[{"status":"public","_id":"29790","publisher":"Wiley","user_id":"23547","volume":9,"citation":{"bibtex":"@article{Kothe_Albert_Meier_Wagner_Tiemann_2022, title={Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors}, volume={9}, DOI={<a href=\"https://doi.org/10.1002/admi.202102357\">10.1002/admi.202102357</a>}, number={2102357}, journal={Advanced Materials Interfaces}, publisher={Wiley}, author={Kothe, Linda and Albert, Maximilian and Meier, Cedrik and Wagner, Thorsten and Tiemann, Michael}, year={2022} }","ama":"Kothe L, Albert M, Meier C, Wagner T, Tiemann M. Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors. <i>Advanced Materials Interfaces</i>. 2022;9. doi:<a href=\"https://doi.org/10.1002/admi.202102357\">10.1002/admi.202102357</a>","short":"L. Kothe, M. Albert, C. Meier, T. Wagner, M. Tiemann, Advanced Materials Interfaces 9 (2022).","chicago":"Kothe, Linda, Maximilian Albert, Cedrik Meier, Thorsten Wagner, and Michael Tiemann. “Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors.” <i>Advanced Materials Interfaces</i> 9 (2022). <a href=\"https://doi.org/10.1002/admi.202102357\">https://doi.org/10.1002/admi.202102357</a>.","ieee":"L. Kothe, M. Albert, C. Meier, T. Wagner, and M. Tiemann, “Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors,” <i>Advanced Materials Interfaces</i>, vol. 9, Art. no. 2102357, 2022, doi: <a href=\"https://doi.org/10.1002/admi.202102357\">10.1002/admi.202102357</a>.","mla":"Kothe, Linda, et al. “Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors.” <i>Advanced Materials Interfaces</i>, vol. 9, 2102357, Wiley, 2022, doi:<a href=\"https://doi.org/10.1002/admi.202102357\">10.1002/admi.202102357</a>.","apa":"Kothe, L., Albert, M., Meier, C., Wagner, T., &#38; Tiemann, M. (2022). Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors. <i>Advanced Materials Interfaces</i>, <i>9</i>, Article 2102357. <a href=\"https://doi.org/10.1002/admi.202102357\">https://doi.org/10.1002/admi.202102357</a>"},"quality_controlled":"1","oa":"1","title":"Stimulation and Enhancement of Near‐Band‐Edge Emission in Zinc Oxide by Distributed Bragg Reflectors","year":"2022","author":[{"full_name":"Kothe, Linda","first_name":"Linda","last_name":"Kothe"},{"last_name":"Albert","first_name":"Maximilian","full_name":"Albert, Maximilian"},{"id":"20798","full_name":"Meier, Cedrik","first_name":"Cedrik","last_name":"Meier","orcid":"https://orcid.org/0000-0002-3787-3572"},{"last_name":"Wagner","first_name":"Thorsten","full_name":"Wagner, Thorsten"},{"id":"23547","full_name":"Tiemann, Michael","last_name":"Tiemann","first_name":"Michael","orcid":"0000-0003-1711-2722"}],"publication_identifier":{"issn":["2196-7350","2196-7350"]},"publication_status":"published","date_updated":"2025-05-27T07:42:58Z","article_type":"original","intvolume":"         9","article_number":"2102357","main_file_link":[{"url":"https://onlinelibrary.wiley.com/doi/epdf/10.1002/admi.202102357","open_access":"1"}],"language":[{"iso":"eng"}],"doi":"10.1002/admi.202102357","publication":"Advanced Materials Interfaces","abstract":[{"lang":"eng","text":"The free exciton transition (near-band-edge emission, NBE) of ZnO at ≈388 nm can be strongly enhanced and even stimulated by an underlying photonic structure. 1D Photonic crystals, so-called distributed Bragg reflectors, are utilized to suppress the deep-level emission of ZnO (DLE, ≈500–530 nm). The reflector stacks are fabricated in a layer-by-layer procedure by wet-chemical synthesis. They consist of low-ε porous SiO2 layers and high-ε TiO2 layers. Varying the thickness of the SiO2 layers allows tuning the optical bandgap in a wide range between ≈420 and 800 nm. A ZnO layer is deposited on top of the reflector stacks by sol–gel synthesis. The spontaneous photoluminescence (PL) emission of the ZnO film is modulated by the photonic structure. When the optical bandgap of the reflector is in resonance with the deep-level emission of ZnO (DLE, ≈500–530 nm), then this defect-related emission mode is suppressed. Strong NBE emission is observed even when the ZnO layer does not show any NBE emission (due to low crystallinity) in the absence of the photonic structure. With this cost-efficient synthesis method, emitters for, e.g., luminescent gas sensors can be fabricated."}],"date_created":"2022-02-08T15:24:58Z","keyword":["Mechanical Engineering","Mechanics of Materials"],"type":"journal_article","department":[{"_id":"15"},{"_id":"35"},{"_id":"2"},{"_id":"307"},{"_id":"230"}]},{"oa":"1","project":[{"name":"PC2: Computing Resources Provided by the Paderborn Center for Parallel Computing","_id":"52"}],"citation":{"ieee":"Y. Grynko, Y. Shkuratov, S. Alhaddad, and J. Förstner, “Light backscattering from numerical analog of planetary regoliths,” presented at the 16th Europlanet Science Congress 2022, Granada, Spain, 2022, doi: <a href=\"https://doi.org/10.5194/epsc2022-151\">10.5194/epsc2022-151</a>.","mla":"Grynko, Yevgen, et al. <i>Light Backscattering from Numerical Analog of Planetary Regoliths</i>. Copernicus GmbH, 2022, doi:<a href=\"https://doi.org/10.5194/epsc2022-151\">10.5194/epsc2022-151</a>.","apa":"Grynko, Y., Shkuratov, Y., Alhaddad, S., &#38; Förstner, J. (2022). <i>Light backscattering from numerical analog of planetary regoliths</i>. 16th Europlanet Science Congress 2022, Granada, Spain. <a href=\"https://doi.org/10.5194/epsc2022-151\">https://doi.org/10.5194/epsc2022-151</a>","bibtex":"@inproceedings{Grynko_Shkuratov_Alhaddad_Förstner_2022, title={Light backscattering from numerical analog of planetary regoliths}, DOI={<a href=\"https://doi.org/10.5194/epsc2022-151\">10.5194/epsc2022-151</a>}, publisher={Copernicus GmbH}, author={Grynko, Yevgen and Shkuratov, Yuriy and Alhaddad, Samer and Förstner, Jens}, year={2022} }","chicago":"Grynko, Yevgen, Yuriy Shkuratov, Samer Alhaddad, and Jens Förstner. “Light Backscattering from Numerical Analog of Planetary Regoliths.” Copernicus GmbH, 2022. <a href=\"https://doi.org/10.5194/epsc2022-151\">https://doi.org/10.5194/epsc2022-151</a>.","short":"Y. Grynko, Y. Shkuratov, S. Alhaddad, J. Förstner, in: Copernicus GmbH, 2022.","ama":"Grynko Y, Shkuratov Y, Alhaddad S, Förstner J. Light backscattering from numerical analog of planetary regoliths. In: Copernicus GmbH; 2022. doi:<a href=\"https://doi.org/10.5194/epsc2022-151\">10.5194/epsc2022-151</a>"},"file_date_updated":"2022-11-23T12:07:10Z","ddc":["530"],"user_id":"158","publisher":"Copernicus GmbH","_id":"34136","has_accepted_license":"1","conference":{"end_date":"2022-09-23","name":"16th Europlanet Science Congress 2022","start_date":"2022-09-18","location":"Granada, Spain"},"status":"public","department":[{"_id":"61"},{"_id":"230"}],"type":"conference_abstract","keyword":["tet_topic_scattering"],"date_created":"2022-11-23T12:03:29Z","file":[{"creator":"fossie","date_created":"2022-11-23T12:07:10Z","date_updated":"2022-11-23T12:07:10Z","relation":"main_file","access_level":"open_access","file_size":645190,"file_name":"2022-09 Grynko - EPSC2022 conference -151-print.pdf","content_type":"application/pdf","file_id":"34137"}],"doi":"10.5194/epsc2022-151","language":[{"iso":"eng"}],"date_updated":"2026-01-17T16:42:35Z","publication_status":"published","author":[{"first_name":"Yevgen","last_name":"Grynko","full_name":"Grynko, Yevgen","id":"26059"},{"first_name":"Yuriy","last_name":"Shkuratov","full_name":"Shkuratov, Yuriy"},{"id":"42456","full_name":"Alhaddad, Samer","last_name":"Alhaddad","first_name":"Samer"},{"id":"158","first_name":"Jens","orcid":"0000-0001-7059-9862","last_name":"Förstner","full_name":"Förstner, Jens"}],"year":"2022","title":"Light backscattering from numerical analog of planetary regoliths"},{"oa":"1","external_id":{"isi":["000895837200001"]},"project":[{"_id":"53","name":"TRR 142: TRR 142"},{"_id":"54","name":"TRR 142 - A: TRR 142 - Project Area A"},{"_id":"55","name":"TRR 142 - B: TRR 142 - Project Area B"},{"_id":"69","name":"TRR 142 - B04: TRR 142 - Subproject B04"},{"name":"TRR 142 - B07: TRR 142 - Subproject B07","_id":"168"},{"name":"TRR 142 - A11: TRR 142 - Subproject A11","_id":"166"},{"_id":"52","name":"PC2: Computing Resources Provided by the Paderborn Center for Parallel Computing"}],"quality_controlled":"1","isi":"1","citation":{"chicago":"Schmidt, Falko, Agnieszka L. Kozub, Uwe Gerstmann, Wolf Gero Schmidt, and Arno Schindlmayr. “A Density-Functional Theory Study of Hole and Defect-Bound Exciton Polarons in Lithium Niobate.” <i>Crystals</i> 12, no. 11 (2022). <a href=\"https://doi.org/10.3390/cryst12111586\">https://doi.org/10.3390/cryst12111586</a>.","short":"F. Schmidt, A.L. Kozub, U. Gerstmann, W.G. Schmidt, A. Schindlmayr, Crystals 12 (2022).","apa":"Schmidt, F., Kozub, A. L., Gerstmann, U., Schmidt, W. G., &#38; Schindlmayr, A. (2022). A density-functional theory study of hole and defect-bound exciton polarons in lithium niobate. <i>Crystals</i>, <i>12</i>(11), Article 1586. <a href=\"https://doi.org/10.3390/cryst12111586\">https://doi.org/10.3390/cryst12111586</a>","ieee":"F. Schmidt, A. L. Kozub, U. Gerstmann, W. G. Schmidt, and A. Schindlmayr, “A density-functional theory study of hole and defect-bound exciton polarons in lithium niobate,” <i>Crystals</i>, vol. 12, no. 11, Art. no. 1586, 2022, doi: <a href=\"https://doi.org/10.3390/cryst12111586\">10.3390/cryst12111586</a>.","ama":"Schmidt F, Kozub AL, Gerstmann U, Schmidt WG, Schindlmayr A. A density-functional theory study of hole and defect-bound exciton polarons in lithium niobate. <i>Crystals</i>. 2022;12(11). doi:<a href=\"https://doi.org/10.3390/cryst12111586\">10.3390/cryst12111586</a>","bibtex":"@article{Schmidt_Kozub_Gerstmann_Schmidt_Schindlmayr_2022, title={A density-functional theory study of hole and defect-bound exciton polarons in lithium niobate}, volume={12}, DOI={<a href=\"https://doi.org/10.3390/cryst12111586\">10.3390/cryst12111586</a>}, number={111586}, journal={Crystals}, publisher={MDPI AG}, author={Schmidt, Falko and Kozub, Agnieszka L. and Gerstmann, Uwe and Schmidt, Wolf Gero and Schindlmayr, Arno}, year={2022} }","mla":"Schmidt, Falko, et al. “A Density-Functional Theory Study of Hole and Defect-Bound Exciton Polarons in Lithium Niobate.” <i>Crystals</i>, vol. 12, no. 11, 1586, MDPI AG, 2022, doi:<a href=\"https://doi.org/10.3390/cryst12111586\">10.3390/cryst12111586</a>."},"file_date_updated":"2023-06-12T00:22:51Z","volume":12,"user_id":"16199","ddc":["530"],"_id":"44088","publisher":"MDPI AG","has_accepted_license":"1","status":"public","department":[{"_id":"15"},{"_id":"296"},{"_id":"170"},{"_id":"295"},{"_id":"35"},{"_id":"230"},{"_id":"429"},{"_id":"27"}],"type":"journal_article","date_created":"2023-04-20T13:52:44Z","file":[{"date_created":"2023-06-11T23:59:27Z","description":"Creative Commons Attribution 4.0 International Public License (CC BY 4.0)","creator":"schindlm","content_type":"application/pdf","file_id":"45570","title":"A density-functional theory study of hole and defect-bound exciton polarons in lithium niobate","access_level":"open_access","file_size":1762554,"file_name":"crystals-12-01586-v2.pdf","date_updated":"2023-06-12T00:22:51Z","relation":"main_file"}],"abstract":[{"lang":"eng","text":"Hole polarons and defect-bound exciton polarons in lithium niobate are investigated by means of density-functional theory, where the localization of the holes is achieved by applying the +U approach to the oxygen 2p orbitals. We find three principal configurations of hole polarons: (i) self-trapped holes localized at displaced regular oxygen atoms and (ii) two other configurations bound to a lithium vacancy either at a threefold coordinated oxygen atom above or at a two-fold coordinated oxygen atom below the defect. The latter is the most stable and is in excellent quantitative agreement with measured g factors from electron paramagnetic resonance. Due to the absence of mid-gap states, none of these hole polarons can explain the broad optical absorption centered between 2.5 and 2.8 eV that is observed in transient absorption spectroscopy, but such states appear if a free electron polaron is trapped at the same lithium vacancy as the bound hole polaron, resulting in an exciton polaron. The dielectric function calculated by solving the Bethe–Salpeter equation indeed yields an optical peak at 2.6 eV in agreement with the two-photon experiments. The coexistence of hole and exciton polarons, which are simultaneously created in optical excitations, thus satisfactorily explains the reported experimental data."}],"issue":"11","publication":"Crystals","doi":"10.3390/cryst12111586","language":[{"iso":"eng"}],"article_number":"1586","article_type":"original","intvolume":"        12","publication_status":"published","date_updated":"2025-09-18T13:28:05Z","publication_identifier":{"eissn":["2073-4352"]},"author":[{"id":"35251","full_name":"Schmidt, Falko","orcid":"0000-0002-5071-5528","first_name":"Falko","last_name":"Schmidt"},{"id":"77566","full_name":"Kozub, Agnieszka L.","first_name":"Agnieszka L.","orcid":"0000-0001-6584-0201","last_name":"Kozub"},{"orcid":"0000-0002-4476-223X","first_name":"Uwe","last_name":"Gerstmann","full_name":"Gerstmann, Uwe","id":"171"},{"full_name":"Schmidt, Wolf Gero","first_name":"Wolf Gero","last_name":"Schmidt","orcid":"0000-0002-2717-5076","id":"468"},{"id":"458","first_name":"Arno","orcid":"0000-0002-4855-071X","last_name":"Schindlmayr","full_name":"Schindlmayr, Arno"}],"year":"2022","title":"A density-functional theory study of hole and defect-bound exciton polarons in lithium niobate"},{"date_created":"2022-12-06T10:15:54Z","department":[{"_id":"58"},{"_id":"230"}],"type":"journal_article","publication":"Optics Express","issue":"3","abstract":[{"text":"We present the design and experimental characterization of a silicon nitride pulse interleaver based on coupled resonator optical waveguide filters. In order to achieve a targeted free spectral range of 1.44 THz, which is large given the reduced optical confinement of the silicon nitride platform, individual ring resonators are designed with tapered waveguides. Its application to time-interleaved photonically-assisted ADCs is analyzed by combining experimental characterization of the photonic integrated circuit with a comprehensive model of the entire ADC. The impact of fundamental signal distortion and noise sources affecting the converter is investigated and suitable equalization techniques at the digital signal processing level are evaluated. The novel application of a simple but powerful equalization filter in the DSP domain allows for a significant improvement of the digitized signal SNR. An ENOB of 5 over a 75 GHz bandwidth (150 GS/s) and an ENOB of 4.3 over a 100 GHz bandwidth (200 GS/s) are expected to be achievable with compact and off-the-shelf single-section semiconductor mode locked lasers, that can be further improved with lower noise light sources.","lang":"eng"}],"language":[{"iso":"eng"}],"article_number":"4444","doi":"10.1364/oe.441406","publication_identifier":{"issn":["1094-4087"]},"author":[{"full_name":"Zazzi, Andrea","first_name":"Andrea","last_name":"Zazzi"},{"full_name":"Müller, Juliana","first_name":"Juliana","last_name":"Müller"},{"first_name":"Ibrahim","last_name":"Ghannam","full_name":"Ghannam, Ibrahim"},{"first_name":"Moritz","last_name":"Battermann","full_name":"Battermann, Moritz"},{"full_name":"Rajeswari, Gayatri Vasudevan","last_name":"Rajeswari","first_name":"Gayatri Vasudevan"},{"first_name":"Maxim","orcid":"https://orcid.org/0000-0003-2699-9839","last_name":"Weizel","full_name":"Weizel, Maxim","id":"44271"},{"full_name":"Scheytt, J. Christoph","first_name":"J. Christoph","orcid":"https://orcid.org/0000-0002-5950-6618","last_name":"Scheytt","id":"37144"},{"first_name":"Jeremy","last_name":"Witzens","full_name":"Witzens, Jeremy"}],"title":"Wideband SiN pulse interleaver for optically-enabled analog-to-digital conversion: a device-to-system analysis with cyclic equalization","year":"2022","intvolume":"        30","date_updated":"2025-10-30T09:12:01Z","publication_status":"published","citation":{"mla":"Zazzi, Andrea, et al. “Wideband SiN Pulse Interleaver for Optically-Enabled Analog-to-Digital Conversion: A Device-to-System Analysis with Cyclic Equalization.” <i>Optics Express</i>, vol. 30, no. 3, 4444, Optica Publishing Group, 2022, doi:<a href=\"https://doi.org/10.1364/oe.441406\">10.1364/oe.441406</a>.","ama":"Zazzi A, Müller J, Ghannam I, et al. Wideband SiN pulse interleaver for optically-enabled analog-to-digital conversion: a device-to-system analysis with cyclic equalization. <i>Optics Express</i>. 2022;30(3). doi:<a href=\"https://doi.org/10.1364/oe.441406\">10.1364/oe.441406</a>","bibtex":"@article{Zazzi_Müller_Ghannam_Battermann_Rajeswari_Weizel_Scheytt_Witzens_2022, title={Wideband SiN pulse interleaver for optically-enabled analog-to-digital conversion: a device-to-system analysis with cyclic equalization}, volume={30}, DOI={<a href=\"https://doi.org/10.1364/oe.441406\">10.1364/oe.441406</a>}, number={34444}, journal={Optics Express}, publisher={Optica Publishing Group}, author={Zazzi, Andrea and Müller, Juliana and Ghannam, Ibrahim and Battermann, Moritz and Rajeswari, Gayatri Vasudevan and Weizel, Maxim and Scheytt, J. Christoph and Witzens, Jeremy}, year={2022} }","apa":"Zazzi, A., Müller, J., Ghannam, I., Battermann, M., Rajeswari, G. V., Weizel, M., Scheytt, J. C., &#38; Witzens, J. (2022). Wideband SiN pulse interleaver for optically-enabled analog-to-digital conversion: a device-to-system analysis with cyclic equalization. <i>Optics Express</i>, <i>30</i>(3), Article 4444. <a href=\"https://doi.org/10.1364/oe.441406\">https://doi.org/10.1364/oe.441406</a>","ieee":"A. Zazzi <i>et al.</i>, “Wideband SiN pulse interleaver for optically-enabled analog-to-digital conversion: a device-to-system analysis with cyclic equalization,” <i>Optics Express</i>, vol. 30, no. 3, Art. no. 4444, 2022, doi: <a href=\"https://doi.org/10.1364/oe.441406\">10.1364/oe.441406</a>.","short":"A. Zazzi, J. Müller, I. Ghannam, M. Battermann, G.V. Rajeswari, M. Weizel, J.C. Scheytt, J. Witzens, Optics Express 30 (2022).","chicago":"Zazzi, Andrea, Juliana Müller, Ibrahim Ghannam, Moritz Battermann, Gayatri Vasudevan Rajeswari, Maxim Weizel, J. Christoph Scheytt, and Jeremy Witzens. “Wideband SiN Pulse Interleaver for Optically-Enabled Analog-to-Digital Conversion: A Device-to-System Analysis with Cyclic Equalization.” <i>Optics Express</i> 30, no. 3 (2022). <a href=\"https://doi.org/10.1364/oe.441406\">https://doi.org/10.1364/oe.441406</a>."},"project":[{"name":"SPP 2111; TP: Ultrabreitbandiger Photonisch-Elektronischer Analog-Digital-Wandler (PACE) - Phase 2","_id":"303"}],"_id":"34230","publisher":"Optica Publishing Group","volume":30,"user_id":"44271","status":"public"},{"user_id":"44271","volume":70,"page":"4422-4435","_id":"34239","publisher":"Institute of Electrical and Electronics Engineers (IEEE)","status":"public","project":[{"_id":"298","name":"FOR 2863: Metrologie für die THz Kommunikation (Meteracom)"},{"name":"FOR 2863:  Metrologie für die THz Kommunikation, TP B2: Rückführbare Terahertz Transceiver","_id":"314"}],"citation":{"bibtex":"@article{Bahmanian_Scheytt_2022, title={Noise Processes and Nonlinear Mechanisms in Optoelectronic Phase-Locked Loop Using a Balanced Optical Microwave Phase Detector}, volume={70}, DOI={<a href=\"https://doi.org/10.1109/tmtt.2022.3197621\">10.1109/tmtt.2022.3197621</a>}, number={10}, journal={IEEE Transactions on Microwave Theory and Techniques}, publisher={Institute of Electrical and Electronics Engineers (IEEE)}, author={Bahmanian, Meysam and Scheytt, J. Christoph}, year={2022}, pages={4422–4435} }","ama":"Bahmanian M, Scheytt JC. Noise Processes and Nonlinear Mechanisms in Optoelectronic Phase-Locked Loop Using a Balanced Optical Microwave Phase Detector. <i>IEEE Transactions on Microwave Theory and Techniques</i>. 2022;70(10):4422-4435. doi:<a href=\"https://doi.org/10.1109/tmtt.2022.3197621\">10.1109/tmtt.2022.3197621</a>","mla":"Bahmanian, Meysam, and J. Christoph Scheytt. “Noise Processes and Nonlinear Mechanisms in Optoelectronic Phase-Locked Loop Using a Balanced Optical Microwave Phase Detector.” <i>IEEE Transactions on Microwave Theory and Techniques</i>, vol. 70, no. 10, Institute of Electrical and Electronics Engineers (IEEE), 2022, pp. 4422–35, doi:<a href=\"https://doi.org/10.1109/tmtt.2022.3197621\">10.1109/tmtt.2022.3197621</a>.","chicago":"Bahmanian, Meysam, and J. Christoph Scheytt. “Noise Processes and Nonlinear Mechanisms in Optoelectronic Phase-Locked Loop Using a Balanced Optical Microwave Phase Detector.” <i>IEEE Transactions on Microwave Theory and Techniques</i> 70, no. 10 (2022): 4422–35. <a href=\"https://doi.org/10.1109/tmtt.2022.3197621\">https://doi.org/10.1109/tmtt.2022.3197621</a>.","short":"M. Bahmanian, J.C. Scheytt, IEEE Transactions on Microwave Theory and Techniques 70 (2022) 4422–4435.","ieee":"M. Bahmanian and J. C. Scheytt, “Noise Processes and Nonlinear Mechanisms in Optoelectronic Phase-Locked Loop Using a Balanced Optical Microwave Phase Detector,” <i>IEEE Transactions on Microwave Theory and Techniques</i>, vol. 70, no. 10, pp. 4422–4435, 2022, doi: <a href=\"https://doi.org/10.1109/tmtt.2022.3197621\">10.1109/tmtt.2022.3197621</a>.","apa":"Bahmanian, M., &#38; Scheytt, J. C. (2022). Noise Processes and Nonlinear Mechanisms in Optoelectronic Phase-Locked Loop Using a Balanced Optical Microwave Phase Detector. <i>IEEE Transactions on Microwave Theory and Techniques</i>, <i>70</i>(10), 4422–4435. <a href=\"https://doi.org/10.1109/tmtt.2022.3197621\">https://doi.org/10.1109/tmtt.2022.3197621</a>"},"doi":"10.1109/tmtt.2022.3197621","language":[{"iso":"eng"}],"publication_status":"published","date_updated":"2025-10-30T09:21:12Z","intvolume":"        70","title":"Noise Processes and Nonlinear Mechanisms in Optoelectronic Phase-Locked Loop Using a Balanced Optical Microwave Phase Detector","year":"2022","author":[{"first_name":"Meysam","last_name":"Bahmanian","full_name":"Bahmanian, Meysam","id":"69233"},{"full_name":"Scheytt, J. Christoph","orcid":"https://orcid.org/0000-0002-5950-6618","first_name":"J. Christoph","last_name":"Scheytt","id":"37144"}],"publication_identifier":{"issn":["0018-9480","1557-9670"]},"type":"journal_article","department":[{"_id":"58"},{"_id":"230"}],"date_created":"2022-12-06T11:05:28Z","publication":"IEEE Transactions on Microwave Theory and Techniques","issue":"10"},{"user_id":"16199","volume":121,"_id":"34094","publisher":"AIP Publishing","status":"public","project":[{"_id":"53","name":"TRR 142: TRR 142"},{"name":"TRR 142 - A: TRR 142 - Project Area A","_id":"54"},{"name":"TRR 142 - A4: TRR 142 - Subproject A4","_id":"61"},{"_id":"53","name":"TRR 142: Maßgeschneiderte nichtlineare Photonik: Von grundlegenden Konzepten zu funktionellen Strukturen"}],"citation":{"short":"Y. Gao, Y. Li, X. Ma, M. Gao, H. Dai, S. Schumacher, T. Gao, Applied Physics Letters 121 (2022).","chicago":"Gao, Ying, Yao Li, Xuekai Ma, Meini Gao, Haitao Dai, Stefan Schumacher, and Tingge Gao. “Tilting Nondispersive Bands in an Empty Microcavity.” <i>Applied Physics Letters</i> 121, no. 20 (2022). <a href=\"https://doi.org/10.1063/5.0093908\">https://doi.org/10.1063/5.0093908</a>.","ieee":"Y. Gao <i>et al.</i>, “Tilting nondispersive bands in an empty microcavity,” <i>Applied Physics Letters</i>, vol. 121, no. 20, Art. no. 201103, 2022, doi: <a href=\"https://doi.org/10.1063/5.0093908\">10.1063/5.0093908</a>.","apa":"Gao, Y., Li, Y., Ma, X., Gao, M., Dai, H., Schumacher, S., &#38; Gao, T. (2022). 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Manipulating polariton condensates by Rashba-Dresselhaus coupling at room temperature. <i>Nature Communications</i>, <i>13</i>(1), Article 3785. <a href=\"https://doi.org/10.1038/s41467-022-31529-4\">https://doi.org/10.1038/s41467-022-31529-4</a>","ieee":"Y. Li <i>et al.</i>, “Manipulating polariton condensates by Rashba-Dresselhaus coupling at room temperature,” <i>Nature Communications</i>, vol. 13, no. 1, Art. no. 3785, 2022, doi: <a href=\"https://doi.org/10.1038/s41467-022-31529-4\">10.1038/s41467-022-31529-4</a>.","short":"Y. Li, X. Ma, X. Zhai, M. Gao, H. Dai, S. Schumacher, T. Gao, Nature Communications 13 (2022).","chicago":"Li, Yao, Xuekai Ma, Xiaokun Zhai, Meini Gao, Haitao Dai, Stefan Schumacher, and Tingge Gao. “Manipulating Polariton Condensates by Rashba-Dresselhaus Coupling at Room Temperature.” <i>Nature Communications</i> 13, no. 1 (2022). <a href=\"https://doi.org/10.1038/s41467-022-31529-4\">https://doi.org/10.1038/s41467-022-31529-4</a>."},"project":[{"name":"TRR 142: TRR 142","_id":"53"},{"name":"TRR 142 - A: TRR 142 - Project Area A","_id":"54"},{"name":"TRR 142 - A4: TRR 142 - Subproject A4","_id":"61"},{"name":"TRR 142: Maßgeschneiderte nichtlineare Photonik: Von grundlegenden Konzepten zu funktionellen Strukturen","_id":"53"}],"status":"public","publisher":"Springer Science and Business Media LLC","_id":"32310","user_id":"16199","volume":13},{"doi":"10.1364/ol.457724","language":[{"iso":"eng"}],"intvolume":"        47","publication_status":"published","date_updated":"2025-12-05T13:55:22Z","publication_identifier":{"issn":["0146-9592","1539-4794"]},"author":[{"last_name":"Gao","first_name":"Xinghui","full_name":"Gao, Xinghui"},{"first_name":"Wei","last_name":"Hu","full_name":"Hu, Wei"},{"last_name":"Schumacher","first_name":"Stefan","orcid":"0000-0003-4042-4951","full_name":"Schumacher, Stefan","id":"27271"},{"full_name":"Ma, Xuekai","first_name":"Xuekai","last_name":"Ma","id":"59416"}],"year":"2022","title":"Unidirectional vortex waveguides and multistable vortex pairs in polariton condensates","department":[{"_id":"15"},{"_id":"170"},{"_id":"297"},{"_id":"705"},{"_id":"230"},{"_id":"429"},{"_id":"35"}],"keyword":["Atomic and Molecular Physics","and Optics"],"type":"journal_article","date_created":"2022-06-24T07:38:11Z","publication":"Optics Letters","issue":"13","volume":47,"user_id":"16199","_id":"32148","publisher":"Optica Publishing Group","page":"3235-3238","status":"public","project":[{"name":"TRR 142: TRR 142","_id":"53"},{"_id":"54","name":"TRR 142 - A: TRR 142 - Project Area A"},{"_id":"61","name":"TRR 142 - A4: TRR 142 - Subproject A4"},{"_id":"53","name":"TRR 142: Maßgeschneiderte nichtlineare Photonik: Von grundlegenden Konzepten zu funktionellen Strukturen"}],"citation":{"ama":"Gao X, Hu W, Schumacher S, Ma X. Unidirectional vortex waveguides and multistable vortex pairs in polariton condensates. <i>Optics Letters</i>. 2022;47(13):3235-3238. doi:<a href=\"https://doi.org/10.1364/ol.457724\">10.1364/ol.457724</a>","bibtex":"@article{Gao_Hu_Schumacher_Ma_2022, title={Unidirectional vortex waveguides and multistable vortex pairs in polariton condensates}, volume={47}, DOI={<a href=\"https://doi.org/10.1364/ol.457724\">10.1364/ol.457724</a>}, number={13}, journal={Optics Letters}, publisher={Optica Publishing Group}, author={Gao, Xinghui and Hu, Wei and Schumacher, Stefan and Ma, Xuekai}, year={2022}, pages={3235–3238} }","mla":"Gao, Xinghui, et al. “Unidirectional Vortex Waveguides and Multistable Vortex Pairs in Polariton Condensates.” <i>Optics Letters</i>, vol. 47, no. 13, Optica Publishing Group, 2022, pp. 3235–38, doi:<a href=\"https://doi.org/10.1364/ol.457724\">10.1364/ol.457724</a>.","chicago":"Gao, Xinghui, Wei Hu, Stefan Schumacher, and Xuekai Ma. “Unidirectional Vortex Waveguides and Multistable Vortex Pairs in Polariton Condensates.” <i>Optics Letters</i> 47, no. 13 (2022): 3235–38. <a href=\"https://doi.org/10.1364/ol.457724\">https://doi.org/10.1364/ol.457724</a>.","short":"X. Gao, W. Hu, S. Schumacher, X. Ma, Optics Letters 47 (2022) 3235–3238.","apa":"Gao, X., Hu, W., Schumacher, S., &#38; Ma, X. (2022). Unidirectional vortex waveguides and multistable vortex pairs in polariton condensates. <i>Optics Letters</i>, <i>47</i>(13), 3235–3238. <a href=\"https://doi.org/10.1364/ol.457724\">https://doi.org/10.1364/ol.457724</a>","ieee":"X. Gao, W. Hu, S. Schumacher, and X. Ma, “Unidirectional vortex waveguides and multistable vortex pairs in polariton condensates,” <i>Optics Letters</i>, vol. 47, no. 13, pp. 3235–3238, 2022, doi: <a href=\"https://doi.org/10.1364/ol.457724\">10.1364/ol.457724</a>."}},{"citation":{"short":"F. Schmidt, A.L. Kozub, U. Gerstmann, W.G. Schmidt, A. Schindlmayr, in: G. Corradi, L. Kovács (Eds.), New Trends in Lithium Niobate: From Bulk to Nanocrystals, MDPI, Basel, 2022, pp. 231–248.","chicago":"Schmidt, Falko, Agnieszka L. Kozub, Uwe Gerstmann, Wolf Gero Schmidt, and Arno Schindlmayr. “Electron Polarons in Lithium Niobate: Charge Localization, Lattice Deformation, and Optical Response.” In <i>New Trends in Lithium Niobate: From Bulk to Nanocrystals</i>, edited by Gábor Corradi and László Kovács, 231–48. Basel: MDPI, 2022. <a href=\"https://doi.org/10.3390/books978-3-0365-3339-1\">https://doi.org/10.3390/books978-3-0365-3339-1</a>.","ieee":"F. Schmidt, A. L. Kozub, U. Gerstmann, W. G. Schmidt, and A. Schindlmayr, “Electron polarons in lithium niobate: Charge localization, lattice deformation, and optical response,” in <i>New Trends in Lithium Niobate: From Bulk to Nanocrystals</i>, G. Corradi and L. Kovács, Eds. Basel: MDPI, 2022, pp. 231–248.","apa":"Schmidt, F., Kozub, A. L., Gerstmann, U., Schmidt, W. G., &#38; Schindlmayr, A. (2022). Electron polarons in lithium niobate: Charge localization, lattice deformation, and optical response. In G. Corradi &#38; L. Kovács (Eds.), <i>New Trends in Lithium Niobate: From Bulk to Nanocrystals</i> (pp. 231–248). MDPI. <a href=\"https://doi.org/10.3390/books978-3-0365-3339-1\">https://doi.org/10.3390/books978-3-0365-3339-1</a>","bibtex":"@inbook{Schmidt_Kozub_Gerstmann_Schmidt_Schindlmayr_2022, place={Basel}, title={Electron polarons in lithium niobate: Charge localization, lattice deformation, and optical response}, DOI={<a href=\"https://doi.org/10.3390/books978-3-0365-3339-1\">10.3390/books978-3-0365-3339-1</a>}, booktitle={New Trends in Lithium Niobate: From Bulk to Nanocrystals}, publisher={MDPI}, author={Schmidt, Falko and Kozub, Agnieszka L. and Gerstmann, Uwe and Schmidt, Wolf Gero and Schindlmayr, Arno}, editor={Corradi, Gábor and Kovács, László}, year={2022}, pages={231–248} }","ama":"Schmidt F, Kozub AL, Gerstmann U, Schmidt WG, Schindlmayr A. Electron polarons in lithium niobate: Charge localization, lattice deformation, and optical response. In: Corradi G, Kovács L, eds. <i>New Trends in Lithium Niobate: From Bulk to Nanocrystals</i>. MDPI; 2022:231-248. doi:<a href=\"https://doi.org/10.3390/books978-3-0365-3339-1\">10.3390/books978-3-0365-3339-1</a>","mla":"Schmidt, Falko, et al. “Electron Polarons in Lithium Niobate: Charge Localization, Lattice Deformation, and Optical Response.” <i>New Trends in Lithium Niobate: From Bulk to Nanocrystals</i>, edited by Gábor Corradi and László Kovács, MDPI, 2022, pp. 231–48, doi:<a href=\"https://doi.org/10.3390/books978-3-0365-3339-1\">10.3390/books978-3-0365-3339-1</a>."},"quality_controlled":"1","project":[{"_id":"53","name":"TRR 142: TRR 142"},{"_id":"55","name":"TRR 142 - B: TRR 142 - Project Area B"},{"name":"TRR 142 - B4: TRR 142 - Subproject B4","_id":"69"},{"_id":"54","name":"TRR 142 - A: TRR 142 - Project Area A"},{"name":"TRR 142 - A11: TRR 142 - Subproject A11","_id":"166"},{"name":"TRR 142 - B07: TRR 142 - Subproject B07","_id":"168"},{"name":"PC2: Computing Resources Provided by the Paderborn Center for Parallel Computing","_id":"52"},{"_id":"53","name":"TRR 142: Maßgeschneiderte nichtlineare Photonik: Von grundlegenden Konzepten zu funktionellen Strukturen"}],"place":"Basel","status":"public","page":"231-248","_id":"30288","publisher":"MDPI","user_id":"16199","ddc":["530"],"editor":[{"full_name":"Corradi, Gábor","first_name":"Gábor","last_name":"Corradi"},{"full_name":"Kovács, László","last_name":"Kovács","first_name":"László"}],"publication":"New Trends in Lithium Niobate: From Bulk to Nanocrystals","abstract":[{"lang":"eng","text":"Lithium niobate (LiNbO3), a material frequently used in optical applications, hosts different kinds of polarons that significantly affect many of its physical properties. In this study, a variety of electron polarons, namely free, bound, and bipolarons, are analyzed using first-principles calculations. We perform a full structural optimization based on density-functional theory for selected intrinsic defects with special attention to the role of symmetry-breaking distortions that lower the total energy. The cations hosting the various polarons relax to a different degree, with a larger relaxation corresponding to a larger gap between the defect level and the conduction-band edge. The projected density of states reveals that the polaron states are formerly empty Nb 4d states lowered into the band gap. Optical absorption spectra are derived within the independent-particle approximation, corrected by the GW approximation that yields a wider band gap and by including excitonic effects within the Bethe-Salpeter equation. Comparing the calculated spectra with the density of states, we find that the defect peak observed in the optical absorption stems from transitions between the defect level and a continuum of empty Nb 4d states. Signatures of polarons are further analyzed in the reflectivity and other experimentally measurable optical coefficients."}],"date_created":"2022-03-13T15:28:47Z","type":"book_chapter","department":[{"_id":"296"},{"_id":"230"},{"_id":"429"},{"_id":"295"},{"_id":"15"},{"_id":"170"},{"_id":"35"},{"_id":"790"}],"title":"Electron polarons in lithium niobate: Charge localization, lattice deformation, and optical response","year":"2022","author":[{"id":"35251","full_name":"Schmidt, Falko","last_name":"Schmidt","first_name":"Falko","orcid":"0000-0002-5071-5528"},{"full_name":"Kozub, Agnieszka L.","first_name":"Agnieszka L.","orcid":"https://orcid.org/0000-0001-6584-0201","last_name":"Kozub","id":"77566"},{"id":"171","full_name":"Gerstmann, Uwe","first_name":"Uwe","orcid":"0000-0002-4476-223X","last_name":"Gerstmann"},{"last_name":"Schmidt","first_name":"Wolf Gero","orcid":"0000-0002-2717-5076","full_name":"Schmidt, Wolf Gero","id":"468"},{"id":"458","full_name":"Schindlmayr, Arno","orcid":"0000-0002-4855-071X","first_name":"Arno","last_name":"Schindlmayr"}],"publication_identifier":{"eisbn":["978-3-0365-3339-1"],"isbn":["978-3-0365-3340-7"]},"publication_status":"published","date_updated":"2025-12-05T14:00:04Z","language":[{"iso":"eng"}],"doi":"10.3390/books978-3-0365-3339-1"},{"citation":{"ieee":"A. Ferreri and P. R. Sharapova, “Two-Colour Spectrally Multimode Integrated SU(1,1) Interferometer,” <i>Symmetry</i>, vol. 14, no. 3, Art. no. 552, 2022, doi: <a href=\"https://doi.org/10.3390/sym14030552\">10.3390/sym14030552</a>.","apa":"Ferreri, A., &#38; Sharapova, P. R. (2022). Two-Colour Spectrally Multimode Integrated SU(1,1) Interferometer. <i>Symmetry</i>, <i>14</i>(3), Article 552. <a href=\"https://doi.org/10.3390/sym14030552\">https://doi.org/10.3390/sym14030552</a>","chicago":"Ferreri, Alessandro, and Polina R. Sharapova. “Two-Colour Spectrally Multimode Integrated SU(1,1) Interferometer.” <i>Symmetry</i> 14, no. 3 (2022). <a href=\"https://doi.org/10.3390/sym14030552\">https://doi.org/10.3390/sym14030552</a>.","short":"A. Ferreri, P.R. Sharapova, Symmetry 14 (2022).","mla":"Ferreri, Alessandro, and Polina R. Sharapova. “Two-Colour Spectrally Multimode Integrated SU(1,1) Interferometer.” <i>Symmetry</i>, vol. 14, no. 3, 552, MDPI AG, 2022, doi:<a href=\"https://doi.org/10.3390/sym14030552\">10.3390/sym14030552</a>.","bibtex":"@article{Ferreri_Sharapova_2022, title={Two-Colour Spectrally Multimode Integrated SU(1,1) Interferometer}, volume={14}, DOI={<a href=\"https://doi.org/10.3390/sym14030552\">10.3390/sym14030552</a>}, number={3552}, journal={Symmetry}, publisher={MDPI AG}, author={Ferreri, Alessandro and Sharapova, Polina R.}, year={2022} }","ama":"Ferreri A, Sharapova PR. Two-Colour Spectrally Multimode Integrated SU(1,1) Interferometer. <i>Symmetry</i>. 2022;14(3). doi:<a href=\"https://doi.org/10.3390/sym14030552\">10.3390/sym14030552</a>"},"project":[{"_id":"53","name":"TRR 142: TRR 142"},{"_id":"56","name":"TRR 142 - C: TRR 142 - Project Area C"},{"name":"TRR 142 - C2: TRR 142 - Subproject C2","_id":"72"},{"_id":"52","name":"PC2: Computing Resources Provided by the Paderborn Center for Parallel Computing"}],"_id":"40371","publisher":"MDPI AG","volume":14,"user_id":"16199","status":"public","date_created":"2023-01-26T13:54:00Z","department":[{"_id":"15"},{"_id":"569"},{"_id":"170"},{"_id":"429"},{"_id":"230"},{"_id":"9"},{"_id":"27"}],"type":"journal_article","keyword":["Physics and Astronomy (miscellaneous)","General Mathematics","Chemistry (miscellaneous)","Computer Science (miscellaneous)"],"issue":"3","publication":"Symmetry","abstract":[{"lang":"eng","text":"<jats:p>Multimode integrated interferometers have great potential for both spectral engineering and metrological applications. However, the material dispersion of integrated platforms constitutes an obstacle that limits the performance and precision of such interferometers. At the same time, two-colour nonlinear interferometers present an important tool for metrological applications, when measurements in a certain frequency range are difficult. In this manuscript, we theoretically developed and investigated an integrated multimode two-colour SU(1,1) interferometer operating in a supersensitive mode. By ensuring the proper design of the integrated platform, we suppressed the dispersion, thereby significantly increasing the visibility of the interference pattern. The use of a continuous wave pump laser provided the symmetry between the spectral shapes of the signal and idler photons concerning half the pump frequency, despite different photon colours. We demonstrate that such an interferometer overcomes the classical phase sensitivity limit for wide parametric gain ranges, when up to 3×104 photons are generated.</jats:p>"}],"language":[{"iso":"eng"}],"article_number":"552","doi":"10.3390/sym14030552","publication_identifier":{"issn":["2073-8994"]},"author":[{"last_name":"Ferreri","first_name":"Alessandro","full_name":"Ferreri, Alessandro"},{"id":"60286","first_name":"Polina R.","last_name":"Sharapova","full_name":"Sharapova, Polina R."}],"year":"2022","title":"Two-Colour Spectrally Multimode Integrated SU(1,1) Interferometer","intvolume":"        14","date_updated":"2025-12-16T11:27:11Z","publication_status":"published"},{"publication_identifier":{"issn":["2515-7647"]},"author":[{"full_name":"Ebers, Lena","first_name":"Lena","last_name":"Ebers","id":"40428"},{"id":"65609","full_name":"Ferreri, Alessandro","first_name":"Alessandro","last_name":"Ferreri"},{"id":"48077","full_name":"Hammer, Manfred","last_name":"Hammer","first_name":"Manfred","orcid":"0000-0002-6331-9348"},{"first_name":"Maximilian","last_name":"Albert","full_name":"Albert, Maximilian"},{"id":"20798","last_name":"Meier","first_name":"Cedrik","orcid":"https://orcid.org/0000-0002-3787-3572","full_name":"Meier, Cedrik"},{"id":"158","first_name":"Jens","last_name":"Förstner","orcid":"0000-0001-7059-9862","full_name":"Förstner, Jens"},{"id":"60286","full_name":"Sharapova, Polina R.","first_name":"Polina R.","last_name":"Sharapova"}],"title":"Flexible source of correlated photons based on LNOI rib waveguides","year":"2022","intvolume":"         4","publication_status":"published","date_updated":"2025-12-16T11:31:04Z","language":[{"iso":"eng"}],"doi":"10.1088/2515-7647/ac5a5b","publication":"Journal of Physics: Photonics","abstract":[{"text":"Lithium niobate on insulator (LNOI) has a great potential for photonic integrated circuits, providing substantial versatility in design of various integrated components. To properly use these components in the implementation of different quantum protocols, photons with different properties are required. In this paper, we theoretically demonstrate a flexible source of correlated photons built on the LNOI waveguide of a special geometry. This source is based on the parametric down-conversion (PDC) process, in which the signal and idler photons are generated at the telecom wavelength and have different spatial profiles and polarizations, but the same group velocities. Distinguishability in polarizations and spatial profiles facilitates the routing and manipulating individual photons, while the equality of their group velocities leads to the absence of temporal walk-off between photons. We show how the spectral properties of the generated photons and the number of their frequency modes can be controlled depending on the pump characteristics and the waveguide length. Finally, we discuss special regimes, in which narrowband light with strong frequency correlations and polarization-entangled Bell states are generated at the telecom wavelength.","lang":"eng"}],"related_material":{"link":[{"relation":"erratum","url":"https://doi.org/10.1088/2515-7647/acc70c","description":"Corrigendum for table C1"}]},"date_created":"2022-03-07T09:51:50Z","department":[{"_id":"61"},{"_id":"230"},{"_id":"429"},{"_id":"15"},{"_id":"569"},{"_id":"170"},{"_id":"287"},{"_id":"35"},{"_id":"34"}],"keyword":["tet_topic_waveguide"],"type":"journal_article","status":"public","_id":"30210","publisher":"IOP Publishing","page":"025001","volume":4,"user_id":"16199","citation":{"bibtex":"@article{Ebers_Ferreri_Hammer_Albert_Meier_Förstner_Sharapova_2022, title={Flexible source of correlated photons based on LNOI rib waveguides}, volume={4}, DOI={<a href=\"https://doi.org/10.1088/2515-7647/ac5a5b\">10.1088/2515-7647/ac5a5b</a>}, journal={Journal of Physics: Photonics}, publisher={IOP Publishing}, author={Ebers, Lena and Ferreri, Alessandro and Hammer, Manfred and Albert, Maximilian and Meier, Cedrik and Förstner, Jens and Sharapova, Polina R.}, year={2022}, pages={025001} }","ama":"Ebers L, Ferreri A, Hammer M, et al. Flexible source of correlated photons based on LNOI rib waveguides. <i>Journal of Physics: Photonics</i>. 2022;4:025001. doi:<a href=\"https://doi.org/10.1088/2515-7647/ac5a5b\">10.1088/2515-7647/ac5a5b</a>","mla":"Ebers, Lena, et al. “Flexible Source of Correlated Photons Based on LNOI Rib Waveguides.” <i>Journal of Physics: Photonics</i>, vol. 4, IOP Publishing, 2022, p. 025001, doi:<a href=\"https://doi.org/10.1088/2515-7647/ac5a5b\">10.1088/2515-7647/ac5a5b</a>.","chicago":"Ebers, Lena, Alessandro Ferreri, Manfred Hammer, Maximilian Albert, Cedrik Meier, Jens Förstner, and Polina R. Sharapova. “Flexible Source of Correlated Photons Based on LNOI Rib Waveguides.” <i>Journal of Physics: Photonics</i> 4 (2022): 025001. <a href=\"https://doi.org/10.1088/2515-7647/ac5a5b\">https://doi.org/10.1088/2515-7647/ac5a5b</a>.","short":"L. Ebers, A. Ferreri, M. Hammer, M. Albert, C. Meier, J. Förstner, P.R. Sharapova, Journal of Physics: Photonics 4 (2022) 025001.","ieee":"L. Ebers <i>et al.</i>, “Flexible source of correlated photons based on LNOI rib waveguides,” <i>Journal of Physics: Photonics</i>, vol. 4, p. 025001, 2022, doi: <a href=\"https://doi.org/10.1088/2515-7647/ac5a5b\">10.1088/2515-7647/ac5a5b</a>.","apa":"Ebers, L., Ferreri, A., Hammer, M., Albert, M., Meier, C., Förstner, J., &#38; Sharapova, P. R. (2022). Flexible source of correlated photons based on LNOI rib waveguides. <i>Journal of Physics: Photonics</i>, <i>4</i>, 025001. <a href=\"https://doi.org/10.1088/2515-7647/ac5a5b\">https://doi.org/10.1088/2515-7647/ac5a5b</a>"},"project":[{"_id":"56","name":"TRR 142 - C: TRR 142 - Project Area C"},{"_id":"75","name":"TRR 142 - C5: TRR 142 - Subproject C5"},{"_id":"72","name":"TRR 142 - C2: TRR 142 - Subproject C2"},{"name":"TRR 142: TRR 142","_id":"53"},{"_id":"53","name":"TRR 142: Maßgeschneiderte nichtlineare Photonik: Von grundlegenden Konzepten zu funktionellen Strukturen"}]},{"publication":"Physical Review A","issue":"1","type":"journal_article","department":[{"_id":"15"},{"_id":"230"},{"_id":"623"}],"date_created":"2022-10-11T07:13:12Z","date_updated":"2025-12-18T17:07:12Z","publication_status":"published","intvolume":"       106","year":"2022","title":"Information extraction in photon-counting experiments","publication_identifier":{"issn":["2469-9926","2469-9934"]},"author":[{"id":"55629","orcid":"0000-0001-7652-1716","last_name":"Schapeler","first_name":"Timon","full_name":"Schapeler, Timon"},{"full_name":"Bartley, Tim","last_name":"Bartley","first_name":"Tim","id":"49683"}],"doi":"10.1103/physreva.106.013701","article_number":"013701","language":[{"iso":"eng"}],"project":[{"_id":"209","name":"ISOQC: Quantenkommunikation mit integrierter Optik im Zusammenhang mit supraleitender Elektronik"}],"citation":{"ieee":"T. Schapeler and T. Bartley, “Information extraction in photon-counting experiments,” <i>Physical Review A</i>, vol. 106, no. 1, Art. no. 013701, 2022, doi: <a href=\"https://doi.org/10.1103/physreva.106.013701\">10.1103/physreva.106.013701</a>.","apa":"Schapeler, T., &#38; Bartley, T. (2022). Information extraction in photon-counting experiments. <i>Physical Review A</i>, <i>106</i>(1), Article 013701. <a href=\"https://doi.org/10.1103/physreva.106.013701\">https://doi.org/10.1103/physreva.106.013701</a>","short":"T. Schapeler, T. Bartley, Physical Review A 106 (2022).","chicago":"Schapeler, Timon, and Tim Bartley. “Information Extraction in Photon-Counting Experiments.” <i>Physical Review A</i> 106, no. 1 (2022). <a href=\"https://doi.org/10.1103/physreva.106.013701\">https://doi.org/10.1103/physreva.106.013701</a>.","mla":"Schapeler, Timon, and Tim Bartley. “Information Extraction in Photon-Counting Experiments.” <i>Physical Review A</i>, vol. 106, no. 1, 013701, American Physical Society (APS), 2022, doi:<a href=\"https://doi.org/10.1103/physreva.106.013701\">10.1103/physreva.106.013701</a>.","bibtex":"@article{Schapeler_Bartley_2022, title={Information extraction in photon-counting experiments}, volume={106}, DOI={<a href=\"https://doi.org/10.1103/physreva.106.013701\">10.1103/physreva.106.013701</a>}, number={1013701}, journal={Physical Review A}, publisher={American Physical Society (APS)}, author={Schapeler, Timon and Bartley, Tim}, year={2022} }","ama":"Schapeler T, Bartley T. Information extraction in photon-counting experiments. <i>Physical Review A</i>. 2022;106(1). doi:<a href=\"https://doi.org/10.1103/physreva.106.013701\">10.1103/physreva.106.013701</a>"},"status":"public","user_id":"55629","volume":106,"publisher":"American Physical Society (APS)","_id":"33670"},{"year":"2022","status":"public","title":"Generation and transmission of 160-Gbaud QPSK Coherent Signals using a Dual-Drive Plasmonic-Organic Hybrid I/Q modulator on Silicon Photonics","author":[{"full_name":"Mardoyan, Haïk","first_name":"Haïk","last_name":"Mardoyan"},{"full_name":"Jorge, Filipe","first_name":"Filipe","last_name":"Jorge"},{"full_name":"Destraz, Marcel","first_name":"Marcel","last_name":"Destraz"},{"last_name":"Duval","first_name":"Bernadette","full_name":"Duval, Bernadette"},{"last_name":"Bitachon","first_name":"Bertold","full_name":"Bitachon, Bertold"},{"full_name":"Horst, Yannik","first_name":"Yannik","last_name":"Horst"},{"full_name":"Benyahya, Kaoutar","last_name":"Benyahya","first_name":"Kaoutar"},{"full_name":"Blache, Fabrice","last_name":"Blache","first_name":"Fabrice"},{"full_name":"Goix, Michel","first_name":"Michel","last_name":"Goix"},{"full_name":"De Leo, Eva","first_name":"Eva","last_name":"De Leo"},{"full_name":"Habegger, Patrick","last_name":"Habegger","first_name":"Patrick"},{"full_name":"Meier, Norbert","first_name":"Norbert","last_name":"Meier"},{"full_name":"Del Medico, Nino","first_name":"Nino","last_name":"Del Medico"},{"last_name":"Tedaldi","first_name":"Valentino","full_name":"Tedaldi, Valentino"},{"last_name":"Funck","first_name":"Christian","full_name":"Funck, Christian"},{"id":"112030","full_name":"Güsken, Nicholas Alexander","first_name":"Nicholas Alexander","last_name":"Güsken","orcid":"0000-0002-4816-0666"},{"first_name":"Juerg","last_name":"Leuthold","full_name":"Leuthold, Juerg"},{"last_name":"Renaudier","first_name":"Jéremie","full_name":"Renaudier, Jéremie"},{"full_name":"Hoessbacher, Claudia","first_name":"Claudia","last_name":"Hoessbacher"},{"full_name":"Heni, Wolfgang","first_name":"Wolfgang","last_name":"Heni"},{"first_name":"Benedikt","last_name":"Baeuerle","full_name":"Baeuerle, Benedikt"}],"publication_status":"published","date_updated":"2026-01-08T13:22:48Z","publisher":"Optica Publishing Group","_id":"63039","language":[{"iso":"eng"}],"user_id":"112030","doi":"10.1364/ofc.2022.th1j.5","publication":"Optical Fiber Communication Conference (OFC) 2022","citation":{"bibtex":"@inproceedings{Mardoyan_Jorge_Destraz_Duval_Bitachon_Horst_Benyahya_Blache_Goix_De Leo_et al._2022, title={Generation and transmission of 160-Gbaud QPSK Coherent Signals using a Dual-Drive Plasmonic-Organic Hybrid I/Q modulator on Silicon Photonics}, DOI={<a href=\"https://doi.org/10.1364/ofc.2022.th1j.5\">10.1364/ofc.2022.th1j.5</a>}, booktitle={Optical Fiber Communication Conference (OFC) 2022}, publisher={Optica Publishing Group}, author={Mardoyan, Haïk and Jorge, Filipe and Destraz, Marcel and Duval, Bernadette and Bitachon, Bertold and Horst, Yannik and Benyahya, Kaoutar and Blache, Fabrice and Goix, Michel and De Leo, Eva and et al.}, year={2022} }","chicago":"Mardoyan, Haïk, Filipe Jorge, Marcel Destraz, Bernadette Duval, Bertold Bitachon, Yannik Horst, Kaoutar Benyahya, et al. “Generation and Transmission of 160-Gbaud QPSK Coherent Signals Using a Dual-Drive Plasmonic-Organic Hybrid I/Q Modulator on Silicon Photonics.” In <i>Optical Fiber Communication Conference (OFC) 2022</i>. Optica Publishing Group, 2022. <a href=\"https://doi.org/10.1364/ofc.2022.th1j.5\">https://doi.org/10.1364/ofc.2022.th1j.5</a>.","ama":"Mardoyan H, Jorge F, Destraz M, et al. Generation and transmission of 160-Gbaud QPSK Coherent Signals using a Dual-Drive Plasmonic-Organic Hybrid I/Q modulator on Silicon Photonics. In: <i>Optical Fiber Communication Conference (OFC) 2022</i>. Optica Publishing Group; 2022. doi:<a href=\"https://doi.org/10.1364/ofc.2022.th1j.5\">10.1364/ofc.2022.th1j.5</a>","short":"H. Mardoyan, F. Jorge, M. Destraz, B. Duval, B. Bitachon, Y. Horst, K. Benyahya, F. Blache, M. Goix, E. De Leo, P. Habegger, N. Meier, N. Del Medico, V. Tedaldi, C. Funck, N.A. Güsken, J. Leuthold, J. Renaudier, C. Hoessbacher, W. Heni, B. Baeuerle, in: Optical Fiber Communication Conference (OFC) 2022, Optica Publishing Group, 2022.","ieee":"H. Mardoyan <i>et al.</i>, “Generation and transmission of 160-Gbaud QPSK Coherent Signals using a Dual-Drive Plasmonic-Organic Hybrid I/Q modulator on Silicon Photonics,” 2022, doi: <a href=\"https://doi.org/10.1364/ofc.2022.th1j.5\">10.1364/ofc.2022.th1j.5</a>.","apa":"Mardoyan, H., Jorge, F., Destraz, M., Duval, B., Bitachon, B., Horst, Y., Benyahya, K., Blache, F., Goix, M., De Leo, E., Habegger, P., Meier, N., Del Medico, N., Tedaldi, V., Funck, C., Güsken, N. A., Leuthold, J., Renaudier, J., Hoessbacher, C., … Baeuerle, B. (2022). Generation and transmission of 160-Gbaud QPSK Coherent Signals using a Dual-Drive Plasmonic-Organic Hybrid I/Q modulator on Silicon Photonics. <i>Optical Fiber Communication Conference (OFC) 2022</i>. <a href=\"https://doi.org/10.1364/ofc.2022.th1j.5\">https://doi.org/10.1364/ofc.2022.th1j.5</a>","mla":"Mardoyan, Haïk, et al. “Generation and Transmission of 160-Gbaud QPSK Coherent Signals Using a Dual-Drive Plasmonic-Organic Hybrid I/Q Modulator on Silicon Photonics.” <i>Optical Fiber Communication Conference (OFC) 2022</i>, Optica Publishing Group, 2022, doi:<a href=\"https://doi.org/10.1364/ofc.2022.th1j.5\">10.1364/ofc.2022.th1j.5</a>."},"abstract":[{"text":"<jats:p>We report on coherent transmission of beyond 100 GBd signaling based on plasmonic technology. Using dual-drive plasmonic-organic-hybrid I/Q modulator on silicon photonics platform, we demonstrate the successful transmission of 160-GBaud QPSK and 140-GBaud 16QAM modulations.</jats:p>","lang":"eng"}],"date_created":"2025-12-11T20:32:06Z","type":"conference","department":[{"_id":"623"},{"_id":"15"},{"_id":"230"}]},{"citation":{"mla":"Güsken, Nicholas Alexander. <i>Plasmonic PICs—Terabit Modulation on the Micrometer Scale</i>. Optica Publishing Group, 2022, doi:<a href=\"https://opg.optica.org/abstract.cfm?URI=ECEOC-2022-Tu4E.3\">https://opg.optica.org/abstract.cfm?URI=ECEOC-2022-Tu4E.3</a>.","bibtex":"@inproceedings{Güsken_2022, title={Plasmonic PICs—Terabit Modulation on the Micrometer Scale}, DOI={<a href=\"https://opg.optica.org/abstract.cfm?URI=ECEOC-2022-Tu4E.3\">https://opg.optica.org/abstract.cfm?URI=ECEOC-2022-Tu4E.3</a>}, publisher={Optica Publishing Group}, author={Güsken, Nicholas Alexander}, year={2022} }","ama":"Güsken NA. Plasmonic PICs—Terabit Modulation on the Micrometer Scale. In: Optica Publishing Group; 2022. doi:<a href=\"https://opg.optica.org/abstract.cfm?URI=ECEOC-2022-Tu4E.3\">https://opg.optica.org/abstract.cfm?URI=ECEOC-2022-Tu4E.3</a>","ieee":"N. A. Güsken, “Plasmonic PICs—Terabit Modulation on the Micrometer Scale,” presented at the European Conference and Exhibition on Optical Communication, 2022, doi: <a href=\"https://opg.optica.org/abstract.cfm?URI=ECEOC-2022-Tu4E.3\">https://opg.optica.org/abstract.cfm?URI=ECEOC-2022-Tu4E.3</a>.","apa":"Güsken, N. A. (2022). <i>Plasmonic PICs—Terabit Modulation on the Micrometer Scale</i>. European Conference and Exhibition on Optical Communication. <a href=\"https://opg.optica.org/abstract.cfm?URI=ECEOC-2022-Tu4E.3\">https://opg.optica.org/abstract.cfm?URI=ECEOC-2022-Tu4E.3</a>","short":"N.A. Güsken, in: Optica Publishing Group, 2022.","chicago":"Güsken, Nicholas Alexander. “Plasmonic PICs—Terabit Modulation on the Micrometer Scale.” Optica Publishing Group, 2022. <a href=\"https://opg.optica.org/abstract.cfm?URI=ECEOC-2022-Tu4E.3\">https://opg.optica.org/abstract.cfm?URI=ECEOC-2022-Tu4E.3</a>."},"department":[{"_id":"623"},{"_id":"15"},{"_id":"230"}],"type":"conference","date_created":"2025-12-11T20:35:30Z","date_updated":"2026-01-08T16:08:47Z","author":[{"last_name":"Güsken","first_name":"Nicholas Alexander","orcid":"0000-0002-4816-0666","full_name":"Güsken, Nicholas Alexander","id":"112030"}],"conference":{"name":"European Conference and Exhibition on Optical Communication"},"year":"2022","status":"public","title":"Plasmonic PICs—Terabit Modulation on the Micrometer Scale","user_id":"112030","doi":"https://opg.optica.org/abstract.cfm?URI=ECEOC-2022-Tu4E.3","publisher":"Optica Publishing Group","_id":"63041","language":[{"iso":"eng"}]},{"status":"public","publisher":"American Physical Society (APS)","_id":"30921","user_id":"68236","volume":105,"citation":{"bibtex":"@article{Held_Engelkemeier_De_Barkhofen_Sperling_Silberhorn_2022, title={Driven Gaussian quantum walks}, volume={105}, DOI={<a href=\"https://doi.org/10.1103/physreva.105.042210\">10.1103/physreva.105.042210</a>}, number={4042210}, journal={Physical Review A}, publisher={American Physical Society (APS)}, author={Held, Philip and Engelkemeier, Melanie and De, Syamsundar and Barkhofen, Sonja and Sperling, Jan and Silberhorn, Christine}, year={2022} }","ama":"Held P, Engelkemeier M, De S, Barkhofen S, Sperling J, Silberhorn C. Driven Gaussian quantum walks. <i>Physical Review A</i>. 2022;105(4). doi:<a href=\"https://doi.org/10.1103/physreva.105.042210\">10.1103/physreva.105.042210</a>","mla":"Held, Philip, et al. “Driven Gaussian Quantum Walks.” <i>Physical Review A</i>, vol. 105, no. 4, 042210, American Physical Society (APS), 2022, doi:<a href=\"https://doi.org/10.1103/physreva.105.042210\">10.1103/physreva.105.042210</a>.","chicago":"Held, Philip, Melanie Engelkemeier, Syamsundar De, Sonja Barkhofen, Jan Sperling, and Christine Silberhorn. “Driven Gaussian Quantum Walks.” <i>Physical Review A</i> 105, no. 4 (2022). <a href=\"https://doi.org/10.1103/physreva.105.042210\">https://doi.org/10.1103/physreva.105.042210</a>.","short":"P. Held, M. Engelkemeier, S. De, S. Barkhofen, J. Sperling, C. Silberhorn, Physical Review A 105 (2022).","ieee":"P. Held, M. Engelkemeier, S. De, S. Barkhofen, J. Sperling, and C. Silberhorn, “Driven Gaussian quantum walks,” <i>Physical Review A</i>, vol. 105, no. 4, Art. no. 042210, 2022, doi: <a href=\"https://doi.org/10.1103/physreva.105.042210\">10.1103/physreva.105.042210</a>.","apa":"Held, P., Engelkemeier, M., De, S., Barkhofen, S., Sperling, J., &#38; Silberhorn, C. (2022). Driven Gaussian quantum walks. <i>Physical Review A</i>, <i>105</i>(4), Article 042210. <a href=\"https://doi.org/10.1103/physreva.105.042210\">https://doi.org/10.1103/physreva.105.042210</a>"},"project":[{"_id":"56","name":"TRR 142 - C: TRR 142 - Project Area C"},{"_id":"53","name":"TRR 142: TRR 142"}],"title":"Driven Gaussian quantum walks","year":"2022","publication_identifier":{"issn":["2469-9926","2469-9934"]},"author":[{"first_name":"Philip","last_name":"Held","full_name":"Held, Philip","id":"68236"},{"first_name":"Melanie","last_name":"Engelkemeier","full_name":"Engelkemeier, Melanie"},{"first_name":"Syamsundar","last_name":"De","full_name":"De, Syamsundar"},{"first_name":"Sonja","last_name":"Barkhofen","full_name":"Barkhofen, Sonja","id":"48188"},{"id":"75127","full_name":"Sperling, Jan","first_name":"Jan","orcid":"0000-0002-5844-3205","last_name":"Sperling"},{"first_name":"Christine","last_name":"Silberhorn","full_name":"Silberhorn, Christine","id":"26263"}],"date_updated":"2026-01-09T09:50:22Z","publication_status":"published","intvolume":"       105","article_type":"original","main_file_link":[{"url":"https://journals.aps.org/pra/abstract/10.1103/PhysRevA.105.042210"}],"article_number":"042210","language":[{"iso":"eng"}],"doi":"10.1103/physreva.105.042210","publication":"Physical Review A","issue":"4","abstract":[{"lang":"eng","text":"Quantum walks function as essential means to implement quantum simulators, allowing one to study complex and often directly inaccessible quantum processes in controllable systems. In this contribution, the notion of a driven Gaussian quantum walk is introduced. In contrast to typically considered quantum walks in optical settings, we describe the operation of the walk in terms of a nonlinear map rather than a unitary operation, e.g., by replacing a beam-splitter-type coin with a two-mode squeezer, being a process that is controlled and driven by a pump field. This opens previously unattainable possibilities for quantum walks that include nonlinear elements as core components of their operation, vastly extending their range of applications. A full framework for driven Gaussian quantum walks is developed, including methods to dynamically characterize nonlinear, quantum, and quantum-nonlinear effects. Moreover, driven Gaussian quantum walks are compared with their classically interfering and linear counterparts, which are based on classical coherence of light rather than quantum superpositions. In particular, the generation and boost of highly multimode entanglement, squeezing, and other quantum effects are studied over the duration of the nonlinear walk. Importantly, we prove the quantumness of the evolution itself, regardless of the input state. A scheme for an experimental realization is proposed. Furthermore, nonlinear properties of driven Gaussian quantum walks are explored, such as amplification that leads to an ever increasing number of correlated quantum particles, constituting a source of new walkers during the walk. Therefore, a concept for quantum walks is proposed that leads to—and even produces—directly accessible quantum phenomena, and that renders the quantum simulation of nonlinear processes possible."}],"date_created":"2022-04-20T06:38:07Z","type":"journal_article","department":[{"_id":"623"},{"_id":"15"},{"_id":"170"},{"_id":"706"},{"_id":"288"},{"_id":"230"},{"_id":"429"},{"_id":"35"}]},{"department":[{"_id":"58"},{"_id":"230"}],"type":"conference","date_created":"2022-12-06T10:42:56Z","project":[{"_id":"302","grant_number":"403154102","name":"PONyDAC: SPP 2111 - PONyDAC II - Präziser Optischer Nyquist-Puls-Synthesizer DAC"},{"_id":"299","grant_number":"13N14882","name":"NyPhE: NyPhE - Nyquist Silicon Photonics Engine"}],"citation":{"apa":"Singh, K., Kress, C., Mandalawi, Y., Misra, A., Preussler, S., Scheytt, J. C., &#38; Schneider, T. (2022). Analysis of the effect of jitter and non-idealities on photonic digital-to-analog converters based on Nyquist pulses. In G. Li &#38; K. Nakajima (Eds.), <i>Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI</i>. SPIE. <a href=\"https://doi.org/10.1117/12.2609501\">https://doi.org/10.1117/12.2609501</a>","ieee":"K. Singh <i>et al.</i>, “Analysis of the effect of jitter and non-idealities on photonic digital-to-analog converters based on Nyquist pulses,” in <i>Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI</i>, 2022, doi: <a href=\"https://doi.org/10.1117/12.2609501\">10.1117/12.2609501</a>.","chicago":"Singh, Karanveer, Christian Kress, Younus Mandalawi, Arijit Misra, Stefan Preussler, J. Christoph Scheytt, and Thomas Schneider. “Analysis of the Effect of Jitter and Non-Idealities on Photonic Digital-to-Analog Converters Based on Nyquist Pulses.” In <i>Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI</i>, edited by Guifang Li and Kazuhide Nakajima. SPIE, 2022. <a href=\"https://doi.org/10.1117/12.2609501\">https://doi.org/10.1117/12.2609501</a>.","short":"K. Singh, C. Kress, Y. Mandalawi, A. Misra, S. Preussler, J.C. Scheytt, T. Schneider, in: G. Li, K. Nakajima (Eds.), Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI, SPIE, 2022.","mla":"Singh, Karanveer, et al. “Analysis of the Effect of Jitter and Non-Idealities on Photonic Digital-to-Analog Converters Based on Nyquist Pulses.” <i>Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI</i>, edited by Guifang Li and Kazuhide Nakajima, SPIE, 2022, doi:<a href=\"https://doi.org/10.1117/12.2609501\">10.1117/12.2609501</a>.","ama":"Singh K, Kress C, Mandalawi Y, et al. Analysis of the effect of jitter and non-idealities on photonic digital-to-analog converters based on Nyquist pulses. In: Li G, Nakajima K, eds. <i>Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI</i>. SPIE; 2022. doi:<a href=\"https://doi.org/10.1117/12.2609501\">10.1117/12.2609501</a>","bibtex":"@inproceedings{Singh_Kress_Mandalawi_Misra_Preussler_Scheytt_Schneider_2022, title={Analysis of the effect of jitter and non-idealities on photonic digital-to-analog converters based on Nyquist pulses}, DOI={<a href=\"https://doi.org/10.1117/12.2609501\">10.1117/12.2609501</a>}, booktitle={Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI}, publisher={SPIE}, author={Singh, Karanveer and Kress, Christian and Mandalawi, Younus and Misra, Arijit and Preussler, Stefan and Scheytt, J. Christoph and Schneider, Thomas}, editor={Li, Guifang and Nakajima, Kazuhide}, year={2022} }"},"publication":"Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI","editor":[{"first_name":"Guifang","last_name":"Li","full_name":"Li, Guifang"},{"full_name":"Nakajima, Kazuhide","last_name":"Nakajima","first_name":"Kazuhide"}],"doi":"10.1117/12.2609501","user_id":"13256","language":[{"iso":"eng"}],"_id":"34233","publisher":"SPIE","date_updated":"2025-07-02T12:19:17Z","publication_status":"published","author":[{"full_name":"Singh, Karanveer","first_name":"Karanveer","last_name":"Singh"},{"id":"13256","full_name":"Kress, Christian","first_name":"Christian","last_name":"Kress","orcid":"0000-0002-4403-2237"},{"first_name":"Younus","last_name":"Mandalawi","full_name":"Mandalawi, Younus"},{"first_name":"Arijit","last_name":"Misra","full_name":"Misra, Arijit"},{"full_name":"Preussler, Stefan","first_name":"Stefan","last_name":"Preussler"},{"id":"37144","last_name":"Scheytt","first_name":"J. Christoph","orcid":"https://orcid.org/0000-0002-5950-6618","full_name":"Scheytt, J. Christoph"},{"first_name":"Thomas","last_name":"Schneider","full_name":"Schneider, Thomas"}],"status":"public","title":"Analysis of the effect of jitter and non-idealities on photonic digital-to-analog converters based on Nyquist pulses","year":"2022"},{"doi":"10.1117/12.2609416","user_id":"13256","editor":[{"first_name":"Guifang","last_name":"Li","full_name":"Li, Guifang"},{"last_name":"Nakajima","first_name":"Kazuhide","full_name":"Nakajima, Kazuhide"}],"_id":"34234","publisher":"SPIE","language":[{"iso":"eng"}],"date_updated":"2025-07-02T12:19:29Z","publication_status":"published","year":"2022","title":"Emulation of integrated high-bandwidth photonic AWG using low-speed electronics","status":"public","author":[{"last_name":"Singh","first_name":"Karanveer","full_name":"Singh, Karanveer"},{"first_name":"Janosch","last_name":"Meier","full_name":"Meier, Janosch"},{"last_name":"Kress","orcid":"0000-0002-4403-2237","first_name":"Christian","full_name":"Kress, Christian","id":"13256"},{"full_name":"Misra, Arijit","last_name":"Misra","first_name":"Arijit"},{"last_name":"Schwabe","first_name":"Tobias","full_name":"Schwabe, Tobias","id":"39217"},{"full_name":"Preussler, Stefan","last_name":"Preussler","first_name":"Stefan"},{"first_name":"J. Christoph","orcid":"https://orcid.org/0000-0002-5950-6618","last_name":"Scheytt","full_name":"Scheytt, J. Christoph","id":"37144"},{"full_name":"Schneider, Thomas","last_name":"Schneider","first_name":"Thomas"}],"type":"conference","department":[{"_id":"58"},{"_id":"230"}],"date_created":"2022-12-06T10:56:24Z","project":[{"name":"PONyDAC: SPP 2111 - PONyDAC II - Präziser Optischer Nyquist-Puls-Synthesizer DAC","grant_number":"403154102","_id":"302"},{"name":"NyPhE: NyPhE - Nyquist Silicon Photonics Engine","grant_number":"13N14882","_id":"299"}],"publication":"Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI","citation":{"ieee":"K. Singh <i>et al.</i>, “Emulation of integrated high-bandwidth photonic AWG using low-speed electronics,” in <i>Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI</i>, 2022, doi: <a href=\"https://doi.org/10.1117/12.2609416\">10.1117/12.2609416</a>.","apa":"Singh, K., Meier, J., Kress, C., Misra, A., Schwabe, T., Preussler, S., Scheytt, J. C., &#38; Schneider, T. (2022). Emulation of integrated high-bandwidth photonic AWG using low-speed electronics. In G. Li &#38; K. Nakajima (Eds.), <i>Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI</i>. SPIE. <a href=\"https://doi.org/10.1117/12.2609416\">https://doi.org/10.1117/12.2609416</a>","chicago":"Singh, Karanveer, Janosch Meier, Christian Kress, Arijit Misra, Tobias Schwabe, Stefan Preussler, J. Christoph Scheytt, and Thomas Schneider. “Emulation of Integrated High-Bandwidth Photonic AWG Using Low-Speed Electronics.” In <i>Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI</i>, edited by Guifang Li and Kazuhide Nakajima. SPIE, 2022. <a href=\"https://doi.org/10.1117/12.2609416\">https://doi.org/10.1117/12.2609416</a>.","short":"K. Singh, J. Meier, C. Kress, A. Misra, T. Schwabe, S. Preussler, J.C. Scheytt, T. Schneider, in: G. Li, K. Nakajima (Eds.), Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI, SPIE, 2022.","mla":"Singh, Karanveer, et al. “Emulation of Integrated High-Bandwidth Photonic AWG Using Low-Speed Electronics.” <i>Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI</i>, edited by Guifang Li and Kazuhide Nakajima, SPIE, 2022, doi:<a href=\"https://doi.org/10.1117/12.2609416\">10.1117/12.2609416</a>.","bibtex":"@inproceedings{Singh_Meier_Kress_Misra_Schwabe_Preussler_Scheytt_Schneider_2022, title={Emulation of integrated high-bandwidth photonic AWG using low-speed electronics}, DOI={<a href=\"https://doi.org/10.1117/12.2609416\">10.1117/12.2609416</a>}, booktitle={Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI}, publisher={SPIE}, author={Singh, Karanveer and Meier, Janosch and Kress, Christian and Misra, Arijit and Schwabe, Tobias and Preussler, Stefan and Scheytt, J. Christoph and Schneider, Thomas}, editor={Li, Guifang and Nakajima, Kazuhide}, year={2022} }","ama":"Singh K, Meier J, Kress C, et al. Emulation of integrated high-bandwidth photonic AWG using low-speed electronics. In: Li G, Nakajima K, eds. <i>Next-Generation Optical Communication: Components, Sub-Systems, and Systems XI</i>. SPIE; 2022. doi:<a href=\"https://doi.org/10.1117/12.2609416\">10.1117/12.2609416</a>"}}]
