[{"publication":"Nanophotonics","issue":"11","abstract":[{"lang":"eng","text":"Quantum dots (QDs) are a promising source of single photons mainly due to their on-demand operation. However, their emission wavelength depends on their size and immediate surroundings in the solid-state environment. By applying a serrodyne electro-optic phase modulation, we achieve a spectral shift up to 0.01 nm (3.5 GHz) while preserving the purity and indistinguishability of the photons. This method provides an efficient and scalable approach for tuning the emission wavelength of QDs without relying on nonlinear frequency mixing or probabilistic processes. Our results show that the electro-optic phase modulation enables stable and tunable spectral shifts, making it suitable for applications such as quantum communication, quantum key distribution, and primarily integrating remote quantum dot sources into large-scale quantum networks."}],"date_created":"2026-01-26T14:34:16Z","department":[{"_id":"623"},{"_id":"288"},{"_id":"15"}],"type":"journal_article","author":[{"full_name":"Kapoor, Sanjay","first_name":"Sanjay","last_name":"Kapoor"},{"last_name":"Rodek","first_name":"Aleksander","full_name":"Rodek, Aleksander"},{"first_name":"Michał","last_name":"Mikołajczyk","full_name":"Mikołajczyk, Michał"},{"full_name":"Szuniewicz, Jerzy","last_name":"Szuniewicz","first_name":"Jerzy"},{"id":"106751","full_name":"Sośnicki, Filip Maksymilian","orcid":"0000-0002-2465-4645","last_name":"Sośnicki","first_name":"Filip Maksymilian"},{"full_name":"Kazimierczuk, Tomasz","last_name":"Kazimierczuk","first_name":"Tomasz"},{"last_name":"Kossacki","first_name":"Piotr","full_name":"Kossacki, Piotr"},{"last_name":"Karpiński","first_name":"Michał","full_name":"Karpiński, Michał"}],"publication_identifier":{"issn":["2192-8614"]},"year":"2025","title":"Electro-optic frequency shift of single photons from a quantum dot","intvolume":"        14","article_type":"original","date_updated":"2026-01-26T14:35:42Z","publication_status":"published","language":[{"iso":"eng"}],"main_file_link":[{"url":"https://www.degruyterbrill.com/document/doi/10.1515/nanoph-2024-0550/html"}],"doi":"10.1515/nanoph-2024-0550","citation":{"chicago":"Kapoor, Sanjay, Aleksander Rodek, Michał Mikołajczyk, Jerzy Szuniewicz, Filip Maksymilian Sośnicki, Tomasz Kazimierczuk, Piotr Kossacki, and Michał Karpiński. “Electro-Optic Frequency Shift of Single Photons from a Quantum Dot.” <i>Nanophotonics</i> 14, no. 11 (2025): 1775–82. <a href=\"https://doi.org/10.1515/nanoph-2024-0550\">https://doi.org/10.1515/nanoph-2024-0550</a>.","short":"S. Kapoor, A. Rodek, M. Mikołajczyk, J. Szuniewicz, F.M. Sośnicki, T. Kazimierczuk, P. Kossacki, M. Karpiński, Nanophotonics 14 (2025) 1775–1782.","apa":"Kapoor, S., Rodek, A., Mikołajczyk, M., Szuniewicz, J., Sośnicki, F. M., Kazimierczuk, T., Kossacki, P., &#38; Karpiński, M. (2025). Electro-optic frequency shift of single photons from a quantum dot. <i>Nanophotonics</i>, <i>14</i>(11), 1775–1782. <a href=\"https://doi.org/10.1515/nanoph-2024-0550\">https://doi.org/10.1515/nanoph-2024-0550</a>","ieee":"S. Kapoor <i>et al.</i>, “Electro-optic frequency shift of single photons from a quantum dot,” <i>Nanophotonics</i>, vol. 14, no. 11, pp. 1775–1782, 2025, doi: <a href=\"https://doi.org/10.1515/nanoph-2024-0550\">10.1515/nanoph-2024-0550</a>.","ama":"Kapoor S, Rodek A, Mikołajczyk M, et al. Electro-optic frequency shift of single photons from a quantum dot. <i>Nanophotonics</i>. 2025;14(11):1775-1782. doi:<a href=\"https://doi.org/10.1515/nanoph-2024-0550\">10.1515/nanoph-2024-0550</a>","bibtex":"@article{Kapoor_Rodek_Mikołajczyk_Szuniewicz_Sośnicki_Kazimierczuk_Kossacki_Karpiński_2025, title={Electro-optic frequency shift of single photons from a quantum dot}, volume={14}, DOI={<a href=\"https://doi.org/10.1515/nanoph-2024-0550\">10.1515/nanoph-2024-0550</a>}, number={11}, journal={Nanophotonics}, publisher={Walter de Gruyter GmbH}, author={Kapoor, Sanjay and Rodek, Aleksander and Mikołajczyk, Michał and Szuniewicz, Jerzy and Sośnicki, Filip Maksymilian and Kazimierczuk, Tomasz and Kossacki, Piotr and Karpiński, Michał}, year={2025}, pages={1775–1782} }","mla":"Kapoor, Sanjay, et al. “Electro-Optic Frequency Shift of Single Photons from a Quantum Dot.” <i>Nanophotonics</i>, vol. 14, no. 11, Walter de Gruyter GmbH, 2025, pp. 1775–82, doi:<a href=\"https://doi.org/10.1515/nanoph-2024-0550\">10.1515/nanoph-2024-0550</a>."},"status":"public","_id":"63734","publisher":"Walter de Gruyter GmbH","page":"1775-1782","volume":14,"user_id":"106751"},{"department":[{"_id":"15"},{"_id":"288"},{"_id":"623"}],"type":"journal_article","date_created":"2025-12-01T08:45:07Z","abstract":[{"text":"Periodically poled thin-film lithium niobate (TFLN) crystals are the fundamental building block for highly-efficient quantum light sources and frequency converters. The efficiency of these devices is strongly dependent on the interaction length between the light and the nonlinear material, scaling quadratically with this parameter. Nevertheless, the fabrication of long, continuously poled areas in TFLN remains challenging, the length of continuously poled areas rarely exceeds 10 mm. In this work, we demonstrate a significant progress in this field achieving the periodic poling of continuous poled areas of 70 mm length with a 3 μm poling period and a close to 50 % duty cycle. We compare two poling electrode design approaches to fabricate long, continuous poled areas. The first approach involves the poling of a single, continuous 70 mm long electrode. The second utilize a segmented approach including the poling of more than 20 individual sections forming together a 70 mm long poling area with no stitching errors. While the continuous electrode allows for faster fabrication, the segmented approach allows to individually optimize the poling resulting in less duty cycle variation. A detailed analysis of the periodic poling results reveals that the results of both are consistent with previously reported poling outcomes for shorter devices. Thus, we demonstrate wafer-scale periodic poling exceeding chiplet-size without any loss in the periodic poling quality. Our work presents a key step towards highly-efficient, narrow-bandwidth and low-pump power nonlinear optical devices.","lang":"eng"}],"publication":"Nanophotonics","doi":"10.1515/nanoph-2025-0461","language":[{"iso":"eng"}],"main_file_link":[{"url":"https://doi.org/10.1515/nanoph-2025-0461","open_access":"1"}],"intvolume":"        14","article_type":"original","date_updated":"2026-01-07T12:06:29Z","publication_status":"published","publication_identifier":{"issn":["2192-8606","2192-8614"]},"author":[{"id":"61375","last_name":"Bollmers","first_name":"Laura","full_name":"Bollmers, Laura"},{"last_name":"Spiegelberg","first_name":"Noah","full_name":"Spiegelberg, Noah"},{"first_name":"Michael","last_name":"Rüsing","orcid":"0000-0003-4682-4577","full_name":"Rüsing, Michael","id":"22501"},{"orcid":"https://orcid.org/0000-0002-5693-3083","first_name":"Christof","last_name":"Eigner","full_name":"Eigner, Christof","id":"13244"},{"last_name":"Padberg","first_name":"Laura","full_name":"Padberg, Laura","id":"40300"},{"first_name":"Christine","last_name":"Silberhorn","full_name":"Silberhorn, Christine","id":"26263"}],"title":"Segmented finger electrodes to optimize ultra-long continuous wafer-scale periodic poling in thin-film lithium niobate","year":"2025","oa":"1","quality_controlled":"1","citation":{"chicago":"Bollmers, Laura, Noah Spiegelberg, Michael Rüsing, Christof Eigner, Laura Padberg, and Christine Silberhorn. “Segmented Finger Electrodes to Optimize Ultra-Long Continuous Wafer-Scale Periodic Poling in Thin-Film Lithium Niobate.” <i>Nanophotonics</i> 14 (2025): 4761. <a href=\"https://doi.org/10.1515/nanoph-2025-0461\">https://doi.org/10.1515/nanoph-2025-0461</a>.","short":"L. Bollmers, N. Spiegelberg, M. Rüsing, C. Eigner, L. Padberg, C. Silberhorn, Nanophotonics 14 (2025) 4761.","ieee":"L. Bollmers, N. Spiegelberg, M. Rüsing, C. Eigner, L. Padberg, and C. Silberhorn, “Segmented finger electrodes to optimize ultra-long continuous wafer-scale periodic poling in thin-film lithium niobate,” <i>Nanophotonics</i>, vol. 14, p. 4761, 2025, doi: <a href=\"https://doi.org/10.1515/nanoph-2025-0461\">10.1515/nanoph-2025-0461</a>.","apa":"Bollmers, L., Spiegelberg, N., Rüsing, M., Eigner, C., Padberg, L., &#38; Silberhorn, C. (2025). Segmented finger electrodes to optimize ultra-long continuous wafer-scale periodic poling in thin-film lithium niobate. <i>Nanophotonics</i>, <i>14</i>, 4761. <a href=\"https://doi.org/10.1515/nanoph-2025-0461\">https://doi.org/10.1515/nanoph-2025-0461</a>","bibtex":"@article{Bollmers_Spiegelberg_Rüsing_Eigner_Padberg_Silberhorn_2025, title={Segmented finger electrodes to optimize ultra-long continuous wafer-scale periodic poling in thin-film lithium niobate}, volume={14}, DOI={<a href=\"https://doi.org/10.1515/nanoph-2025-0461\">10.1515/nanoph-2025-0461</a>}, journal={Nanophotonics}, publisher={Walter de Gruyter GmbH}, author={Bollmers, Laura and Spiegelberg, Noah and Rüsing, Michael and Eigner, Christof and Padberg, Laura and Silberhorn, Christine}, year={2025}, pages={4761} }","ama":"Bollmers L, Spiegelberg N, Rüsing M, Eigner C, Padberg L, Silberhorn C. Segmented finger electrodes to optimize ultra-long continuous wafer-scale periodic poling in thin-film lithium niobate. <i>Nanophotonics</i>. 2025;14:4761. doi:<a href=\"https://doi.org/10.1515/nanoph-2025-0461\">10.1515/nanoph-2025-0461</a>","mla":"Bollmers, Laura, et al. “Segmented Finger Electrodes to Optimize Ultra-Long Continuous Wafer-Scale Periodic Poling in Thin-Film Lithium Niobate.” <i>Nanophotonics</i>, vol. 14, Walter de Gruyter GmbH, 2025, p. 4761, doi:<a href=\"https://doi.org/10.1515/nanoph-2025-0461\">10.1515/nanoph-2025-0461</a>."},"volume":14,"user_id":"22501","_id":"62713","publisher":"Walter de Gruyter GmbH","page":"4761","status":"public"},{"volume":13,"user_id":"16199","publisher":"Walter de Gruyter GmbH","_id":"61255","page":"509-518","status":"public","project":[{"name":"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"},{"name":"TRR 142 - Project Area A","_id":"54"},{"name":"TRR 142 - Project Area B","_id":"55"},{"_id":"61","name":"TRR 142; TP A04: Nichtlineare Quantenprozesstomographie und Photonik mit Polaritonen in Mikrokavitäten"},{"_id":"170","name":"TRR 142; TP B09: Effiziente Erzeugung mit maßgeschneiderter optischer Phaselage der zweiten Harmonischen mittels Quasi-gebundener Zustände in GaAs Metaoberflächen"}],"citation":{"bibtex":"@article{Schneider_Gao_Zentgraf_Schumacher_Ma_2024, title={Topological edge and corner states in coupled wave lattices in nonlinear polariton condensates}, volume={13}, DOI={<a href=\"https://doi.org/10.1515/nanoph-2023-0556\">10.1515/nanoph-2023-0556</a>}, number={4}, journal={Nanophotonics}, publisher={Walter de Gruyter GmbH}, author={Schneider, Tobias and Gao, Wenlong and Zentgraf, Thomas and Schumacher, Stefan and Ma, Xuekai}, year={2024}, pages={509–518} }","ama":"Schneider T, Gao W, Zentgraf T, Schumacher S, Ma X. Topological edge and corner states in coupled wave lattices in nonlinear polariton condensates. <i>Nanophotonics</i>. 2024;13(4):509-518. doi:<a href=\"https://doi.org/10.1515/nanoph-2023-0556\">10.1515/nanoph-2023-0556</a>","mla":"Schneider, Tobias, et al. “Topological Edge and Corner States in Coupled Wave Lattices in Nonlinear Polariton Condensates.” <i>Nanophotonics</i>, vol. 13, no. 4, Walter de Gruyter GmbH, 2024, pp. 509–18, doi:<a href=\"https://doi.org/10.1515/nanoph-2023-0556\">10.1515/nanoph-2023-0556</a>.","short":"T. Schneider, W. Gao, T. Zentgraf, S. Schumacher, X. Ma, Nanophotonics 13 (2024) 509–518.","chicago":"Schneider, Tobias, Wenlong Gao, Thomas Zentgraf, Stefan Schumacher, and Xuekai Ma. “Topological Edge and Corner States in Coupled Wave Lattices in Nonlinear Polariton Condensates.” <i>Nanophotonics</i> 13, no. 4 (2024): 509–18. <a href=\"https://doi.org/10.1515/nanoph-2023-0556\">https://doi.org/10.1515/nanoph-2023-0556</a>.","ieee":"T. Schneider, W. Gao, T. Zentgraf, S. Schumacher, and X. Ma, “Topological edge and corner states in coupled wave lattices in nonlinear polariton condensates,” <i>Nanophotonics</i>, vol. 13, no. 4, pp. 509–518, 2024, doi: <a href=\"https://doi.org/10.1515/nanoph-2023-0556\">10.1515/nanoph-2023-0556</a>.","apa":"Schneider, T., Gao, W., Zentgraf, T., Schumacher, S., &#38; Ma, X. (2024). Topological edge and corner states in coupled wave lattices in nonlinear polariton condensates. <i>Nanophotonics</i>, <i>13</i>(4), 509–518. <a href=\"https://doi.org/10.1515/nanoph-2023-0556\">https://doi.org/10.1515/nanoph-2023-0556</a>"},"doi":"10.1515/nanoph-2023-0556","language":[{"iso":"eng"}],"intvolume":"        13","publication_status":"published","date_updated":"2025-09-12T11:22:41Z","author":[{"first_name":"Tobias","last_name":"Schneider","full_name":"Schneider, Tobias"},{"first_name":"Wenlong","last_name":"Gao","full_name":"Gao, Wenlong","id":"78853"},{"id":"30525","orcid":"0000-0002-8662-1101","first_name":"Thomas","last_name":"Zentgraf","full_name":"Zentgraf, Thomas"},{"id":"27271","first_name":"Stefan","orcid":"0000-0003-4042-4951","last_name":"Schumacher","full_name":"Schumacher, Stefan"},{"id":"59416","first_name":"Xuekai","last_name":"Ma","full_name":"Ma, Xuekai"}],"publication_identifier":{"issn":["2192-8614"]},"title":"Topological edge and corner states in coupled wave lattices in nonlinear polariton condensates","year":"2024","department":[{"_id":"15"},{"_id":"170"},{"_id":"297"},{"_id":"705"},{"_id":"35"},{"_id":"230"},{"_id":"429"},{"_id":"27"}],"type":"journal_article","date_created":"2025-09-12T11:19:22Z","abstract":[{"text":"<jats:title>Abstract</jats:title>\r\n               <jats:p>Topological states have been widely investigated in different types of systems and lattices. In the present work, we report on topological edge states in double-wave (DW) chains, which can be described by a generalized Aubry-André-Harper (AAH) model. For the specific system of a driven-dissipative exciton polariton system we show that in such potential chains, different types of edge states can form. For resonant optical excitation, we further find that the optical nonlinearity leads to a multistability of different edge states. This includes topologically protected edge states evolved directly from individual linear eigenstates as well as additional edge states that originate from nonlinearity-induced localization of bulk states. Extending the system into two dimensions (2D) by stacking horizontal DW chains in the vertical direction, we also create 2D multi-wave lattices. In such 2D lattices multiple Su–Schrieffer–Heeger (SSH) chains appear along the vertical direction. The combination of DW chains in the horizonal and SSH chains in the vertical direction then results in the formation of higher-order topological insulator corner states. Multistable corner states emerge in the nonlinear regime.</jats:p>","lang":"eng"}],"publication":"Nanophotonics","issue":"4"},{"citation":{"mla":"Frese, Daniel, et al. “A Wavelength and Polarization Selective Photon Sieve for Holographic Applications.” <i>Nanophotonics</i>, vol. 10, no. 18, De Gruyter, 2021, pp. 4543–50, doi:<a href=\"https://doi.org/10.1515/nanoph-2021-0440\">10.1515/nanoph-2021-0440</a>.","bibtex":"@article{Frese_Sain_Zhou_Wang_Huang_Zentgraf_2021, title={A wavelength and polarization selective photon sieve for holographic applications}, volume={10}, DOI={<a href=\"https://doi.org/10.1515/nanoph-2021-0440\">10.1515/nanoph-2021-0440</a>}, number={18}, journal={Nanophotonics}, publisher={De Gruyter}, author={Frese, Daniel and Sain, Basudeb and Zhou, Hongqiang and Wang, Yongtian and Huang, Lingling and Zentgraf, Thomas}, year={2021}, pages={4543–4550} }","ama":"Frese D, Sain B, Zhou H, Wang Y, Huang L, Zentgraf T. A wavelength and polarization selective photon sieve for holographic applications. <i>Nanophotonics</i>. 2021;10(18):4543-4550. doi:<a href=\"https://doi.org/10.1515/nanoph-2021-0440\">10.1515/nanoph-2021-0440</a>","ieee":"D. Frese, B. Sain, H. Zhou, Y. Wang, L. Huang, and T. Zentgraf, “A wavelength and polarization selective photon sieve for holographic applications,” <i>Nanophotonics</i>, vol. 10, no. 18, pp. 4543–4550, 2021, doi: <a href=\"https://doi.org/10.1515/nanoph-2021-0440\">10.1515/nanoph-2021-0440</a>.","apa":"Frese, D., Sain, B., Zhou, H., Wang, Y., Huang, L., &#38; Zentgraf, T. (2021). A wavelength and polarization selective photon sieve for holographic applications. <i>Nanophotonics</i>, <i>10</i>(18), 4543–4550. <a href=\"https://doi.org/10.1515/nanoph-2021-0440\">https://doi.org/10.1515/nanoph-2021-0440</a>","chicago":"Frese, Daniel, Basudeb Sain, Hongqiang Zhou, Yongtian Wang, Lingling Huang, and Thomas Zentgraf. “A Wavelength and Polarization Selective Photon Sieve for Holographic Applications.” <i>Nanophotonics</i> 10, no. 18 (2021): 4543–50. <a href=\"https://doi.org/10.1515/nanoph-2021-0440\">https://doi.org/10.1515/nanoph-2021-0440</a>.","short":"D. Frese, B. Sain, H. Zhou, Y. Wang, L. Huang, T. Zentgraf, Nanophotonics 10 (2021) 4543–4550."},"quality_controlled":"1","project":[{"name":"TRR 142","_id":"53"},{"name":"TRR 142 - Project Area A","_id":"54"},{"_id":"65","name":"TRR 142 - Subproject A8"}],"oa":"1","status":"public","page":"4543-4550","publisher":"De Gruyter","_id":"26987","funded_apc":"1","user_id":"30525","volume":10,"publication":"Nanophotonics","issue":"18","abstract":[{"lang":"eng","text":"Optical metasurfaces are perfect candidates for the phase and amplitude modulation of light, featuring an excellent basis for holographic applications. In this work, we present a dual amplitude holographic scheme based on the photon sieve principle, which is then combined with a phase hologram by utilizing the Pancharatnam–Berry phase. We demonstrate that two types of apertures, rectangular and square shapes in a gold film filled with silicon nanoantennas are sufficient to create two amplitude holograms at two different wavelengths in the visible, multiplexed with an additional phase-only hologram. The nanoantennas are tailored to adjust the spectral transmittance of the apertures, enabling the wavelength sensitivity. The phase-only hologram is implemented by utilizing the anisotropic rectangular structure. Interestingly, such three holograms have quantitative mathematical correlations with each other. Thus, the flexibility of polarization and wavelength channels can be utilized with custom-tailored features to achieve such amplitude and phase holography simultaneously without sacrificing any space-bandwidth product. The present scheme has the potential to store different pieces of information which can be displayed separately by switching the wavelength or the polarization state of the reading light beam."}],"date_created":"2021-10-28T07:15:52Z","type":"journal_article","department":[{"_id":"15"},{"_id":"230"},{"_id":"289"}],"year":"2021","title":"A wavelength and polarization selective photon sieve for holographic applications","publication_identifier":{"issn":["2192-8614","2192-8606"]},"author":[{"first_name":"Daniel","last_name":"Frese","full_name":"Frese, Daniel"},{"first_name":"Basudeb","last_name":"Sain","full_name":"Sain, Basudeb"},{"full_name":"Zhou, Hongqiang","first_name":"Hongqiang","last_name":"Zhou"},{"full_name":"Wang, Yongtian","last_name":"Wang","first_name":"Yongtian"},{"first_name":"Lingling","last_name":"Huang","full_name":"Huang, Lingling"},{"id":"30525","full_name":"Zentgraf, Thomas","last_name":"Zentgraf","first_name":"Thomas","orcid":"0000-0002-8662-1101"}],"date_updated":"2022-01-20T07:33:16Z","publication_status":"published","intvolume":"        10","main_file_link":[{"url":"https://www.degruyter.com/document/doi/10.1515/nanoph-2021-0440/html","open_access":"1"}],"language":[{"iso":"eng"}],"doi":"10.1515/nanoph-2021-0440"},{"year":"2020","title":"Second harmonic imaging of plasmonic Pancharatnam-Berry phase metasurfaces coupled to monolayers of WS2","author":[{"last_name":"Spreyer","first_name":"Florian","full_name":"Spreyer, Florian"},{"full_name":"Zhao, Ruizhe","first_name":"Ruizhe","last_name":"Zhao"},{"last_name":"Huang","first_name":"Lingling","full_name":"Huang, Lingling"},{"full_name":"Zentgraf, Thomas","first_name":"Thomas","last_name":"Zentgraf","orcid":"0000-0002-8662-1101","id":"30525"}],"publication_identifier":{"issn":["2192-8614"]},"date_updated":"2022-01-06T06:52:27Z","publication_status":"published","intvolume":"         9","language":[{"iso":"eng"}],"doi":"10.1515/nanoph-2019-0378","publication":"Nanophotonics","issue":"2","abstract":[{"text":"<jats:p>The nonlinear processes of frequency conversion such as second harmonic generation (SHG) usually obey certain selection rules, resulting from the preservation of different kinds of physical quantities, e.g. the angular momentum. For the SHG created by a monolayer of transition-metal dichalcogenides (TMDCs) such as WS<jats:sub>2</jats:sub>, the valley-exciton locked selection rule predicts an SHG signal in the cross-polarization state. By combining plasmonic nanostructures with a monolayer of TMDC, a hybrid metasurface is realized, which affects this nonlinear process because of an additional polarization conversion process. Here, we observe that the plasmonic metasurface modifies the light-matter interaction with the TMDC, resulting in an SHG signal that is co-polarized with respect to the incident field, which is usually forbidden for the monolayers of TMDC. We fabricate such hybrid metasurfaces by placing plasmonic nanorods on top of a monolayer WS<jats:sub>2</jats:sub> and study the valley-exciton locked SHG emission from such system for different parameters, such as wavelength and polarization. Furthermore, we show the potential of the hybrid metasurface for tailoring nonlinear processes by adding additional phase information to the SHG signal using the Pancharatnam-Berry phase effect. This allows direct tailoring of the SHG emission to the far-field.</jats:p>","lang":"eng"}],"file":[{"file_id":"15481","content_type":"application/pdf","success":1,"relation":"main_file","date_updated":"2020-01-09T14:11:06Z","file_name":"Nanophotonics_Spreyer_2020.pdf","access_level":"closed","file_size":4075031,"date_created":"2020-01-09T14:11:06Z","creator":"zentgraf"}],"date_created":"2020-01-09T14:08:43Z","type":"journal_article","department":[{"_id":"15"},{"_id":"230"},{"_id":"289"}],"status":"public","has_accepted_license":"1","page":"351–360","_id":"15480","ddc":["530"],"user_id":"30525","volume":9,"file_date_updated":"2020-01-09T14:11:06Z","citation":{"bibtex":"@article{Spreyer_Zhao_Huang_Zentgraf_2020, title={Second harmonic imaging of plasmonic Pancharatnam-Berry phase metasurfaces coupled to monolayers of WS2}, volume={9}, DOI={<a href=\"https://doi.org/10.1515/nanoph-2019-0378\">10.1515/nanoph-2019-0378</a>}, number={2}, journal={Nanophotonics}, author={Spreyer, Florian and Zhao, Ruizhe and Huang, Lingling and Zentgraf, Thomas}, year={2020}, pages={351–360} }","ama":"Spreyer F, Zhao R, Huang L, Zentgraf T. Second harmonic imaging of plasmonic Pancharatnam-Berry phase metasurfaces coupled to monolayers of WS2. <i>Nanophotonics</i>. 2020;9(2):351–360. doi:<a href=\"https://doi.org/10.1515/nanoph-2019-0378\">10.1515/nanoph-2019-0378</a>","mla":"Spreyer, Florian, et al. “Second Harmonic Imaging of Plasmonic Pancharatnam-Berry Phase Metasurfaces Coupled to Monolayers of WS2.” <i>Nanophotonics</i>, vol. 9, no. 2, 2020, pp. 351–360, doi:<a href=\"https://doi.org/10.1515/nanoph-2019-0378\">10.1515/nanoph-2019-0378</a>.","short":"F. Spreyer, R. Zhao, L. Huang, T. Zentgraf, Nanophotonics 9 (2020) 351–360.","chicago":"Spreyer, Florian, Ruizhe Zhao, Lingling Huang, and Thomas Zentgraf. “Second Harmonic Imaging of Plasmonic Pancharatnam-Berry Phase Metasurfaces Coupled to Monolayers of WS2.” <i>Nanophotonics</i> 9, no. 2 (2020): 351–360. <a href=\"https://doi.org/10.1515/nanoph-2019-0378\">https://doi.org/10.1515/nanoph-2019-0378</a>.","ieee":"F. Spreyer, R. Zhao, L. Huang, and T. Zentgraf, “Second harmonic imaging of plasmonic Pancharatnam-Berry phase metasurfaces coupled to monolayers of WS2,” <i>Nanophotonics</i>, vol. 9, no. 2, pp. 351–360, 2020.","apa":"Spreyer, F., Zhao, R., Huang, L., &#38; Zentgraf, T. (2020). 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(2018). Metasurface holography: from fundamentals to applications. <i>Nanophotonics</i>, <i>7</i>(6), 1169–1190. <a href=\"https://doi.org/10.1515/nanoph-2017-0118\">https://doi.org/10.1515/nanoph-2017-0118</a>","ieee":"L. Huang, S. Zhang, and T. Zentgraf, “Metasurface holography: from fundamentals to applications,” <i>Nanophotonics</i>, vol. 7, no. 6, pp. 1169–1190, 2018.","chicago":"Huang, Lingling, Shuang Zhang, and Thomas Zentgraf. “Metasurface Holography: From Fundamentals to Applications.” <i>Nanophotonics</i> 7, no. 6 (2018): 1169–90. <a href=\"https://doi.org/10.1515/nanoph-2017-0118\">https://doi.org/10.1515/nanoph-2017-0118</a>.","ama":"Huang L, Zhang S, Zentgraf T. Metasurface holography: from fundamentals to applications. <i>Nanophotonics</i>. 2018;7(6):1169-1190. doi:<a href=\"https://doi.org/10.1515/nanoph-2017-0118\">10.1515/nanoph-2017-0118</a>","short":"L. Huang, S. Zhang, T. Zentgraf, Nanophotonics 7 (2018) 1169–1190.","bibtex":"@article{Huang_Zhang_Zentgraf_2018, title={Metasurface holography: from fundamentals to applications}, volume={7}, DOI={<a href=\"https://doi.org/10.1515/nanoph-2017-0118\">10.1515/nanoph-2017-0118</a>}, number={6}, journal={Nanophotonics}, publisher={Walter de Gruyter GmbH}, author={Huang, Lingling and Zhang, Shuang and Zentgraf, Thomas}, year={2018}, pages={1169–1190} }"}},{"volume":7,"user_id":"30525","publisher":"Walter de Gruyter GmbH","_id":"4357","page":"1013-1024","status":"public","project":[{"_id":"53","grant_number":"231447078","name":"TRR 142: TRR 142 - Maßgeschneiderte nichtlineare Photonik: Von grundlegenden Konzepten zu funktionellen Strukturen"},{"_id":"54","name":"TRR 142 - A: TRR 142 - Project Area A"},{"name":"TRR 142 - A05: TRR 142 - Plasmonische Nanoantennen verstärkte Licht Emission und Frequenz Konversion in dielektrischen und Halbleiter-Mikrostrukturen (A05)","_id":"62","grant_number":"231447078"}],"citation":{"short":"S. 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