[{"status":"public","_id":"21631","volume":7,"user_id":"30525","citation":{"ama":"Georgi P, Wei Q, Sain B, et al. Optical secret sharing with cascaded metasurface holography. <i>Science Advances</i>. 2021;7(16). doi:<a href=\"https://doi.org/10.1126/sciadv.abf9718\">10.1126/sciadv.abf9718</a>","bibtex":"@article{Georgi_Wei_Sain_Schlickriede_Wang_Huang_Zentgraf_2021, title={Optical secret sharing with cascaded metasurface holography}, volume={7}, DOI={<a href=\"https://doi.org/10.1126/sciadv.abf9718\">10.1126/sciadv.abf9718</a>}, number={16eabf9718}, journal={Science Advances}, author={Georgi, Philip and Wei, Qunshuo and Sain, Basudeb and Schlickriede, Christian and Wang, Yongtian and Huang, Lingling and Zentgraf, Thomas}, year={2021} }","mla":"Georgi, Philip, et al. “Optical Secret Sharing with Cascaded Metasurface Holography.” <i>Science Advances</i>, vol. 7, no. 16, eabf9718, 2021, doi:<a href=\"https://doi.org/10.1126/sciadv.abf9718\">10.1126/sciadv.abf9718</a>.","chicago":"Georgi, Philip, Qunshuo Wei, Basudeb Sain, Christian Schlickriede, Yongtian Wang, Lingling Huang, and Thomas Zentgraf. “Optical Secret Sharing with Cascaded Metasurface Holography.” <i>Science Advances</i> 7, no. 16 (2021). <a href=\"https://doi.org/10.1126/sciadv.abf9718\">https://doi.org/10.1126/sciadv.abf9718</a>.","short":"P. Georgi, Q. Wei, B. Sain, C. Schlickriede, Y. Wang, L. Huang, T. Zentgraf, Science Advances 7 (2021).","apa":"Georgi, P., Wei, Q., Sain, B., Schlickriede, C., Wang, Y., Huang, L., &#38; Zentgraf, T. (2021). Optical secret sharing with cascaded metasurface holography. <i>Science Advances</i>, <i>7</i>(16). <a href=\"https://doi.org/10.1126/sciadv.abf9718\">https://doi.org/10.1126/sciadv.abf9718</a>","ieee":"P. Georgi <i>et al.</i>, “Optical secret sharing with cascaded metasurface holography,” <i>Science Advances</i>, vol. 7, no. 16, 2021."},"quality_controlled":"1","oa":"1","author":[{"full_name":"Georgi, Philip","last_name":"Georgi","first_name":"Philip"},{"first_name":"Qunshuo","last_name":"Wei","full_name":"Wei, Qunshuo"},{"first_name":"Basudeb","last_name":"Sain","full_name":"Sain, Basudeb"},{"id":"59792","full_name":"Schlickriede, Christian","last_name":"Schlickriede","first_name":"Christian"},{"full_name":"Wang, Yongtian","first_name":"Yongtian","last_name":"Wang"},{"full_name":"Huang, Lingling","first_name":"Lingling","last_name":"Huang"},{"id":"30525","full_name":"Zentgraf, Thomas","last_name":"Zentgraf","orcid":"0000-0002-8662-1101","first_name":"Thomas"}],"publication_identifier":{"issn":["2375-2548"]},"title":"Optical secret sharing with cascaded metasurface holography","year":"2021","intvolume":"         7","article_type":"original","date_updated":"2022-01-06T06:55:08Z","publication_status":"published","language":[{"iso":"eng"}],"main_file_link":[{"url":"https://advances.sciencemag.org/content/7/16/eabf9718","open_access":"1"}],"article_number":"eabf9718","doi":"10.1126/sciadv.abf9718","issue":"16","publication":"Science Advances","abstract":[{"lang":"eng","text":"<jats:p>Secret sharing is a well-established cryptographic primitive for storing highly sensitive information like encryption keys for encoded data. It describes the problem of splitting a secret into different shares, without revealing any information to its shareholders. Here, we demonstrate an all-optical solution for secret sharing based on metasurface holography. In our concept, metasurface holograms are used as spatially separable shares that carry encrypted messages in the form of holographic images. Two of these shares can be recombined by bringing them close together. Light passing through this stack of metasurfaces accumulates the phase shift of both holograms and optically reconstructs the secret with high fidelity. In addition, the hologram generated by each single metasurface can uniquely identify its shareholder. Furthermore, we demonstrate that the inherent translational alignment sensitivity between two stacked metasurface holograms can be used for spatial multiplexing, which can be further extended to realize optical rulers.</jats:p>"}],"date_created":"2021-04-16T08:08:49Z","department":[{"_id":"15"},{"_id":"230"},{"_id":"289"},{"_id":"623"}],"type":"journal_article"},{"oa":"1","quality_controlled":"1","file_date_updated":"2022-03-03T07:24:44Z","citation":{"short":"J. Lu, K.G. Wirth, W. Gao, A. Heßler, B. Sain, T. Taubner, T. Zentgraf, Science Advances 7 (2021).","chicago":"Lu, Jinlong, Konstantin G. Wirth, Wenlong Gao, Andreas Heßler, Basudeb Sain, Thomas Taubner, and Thomas Zentgraf. “Observing 0D Subwavelength-Localized Modes at ~100 THz Protected by Weak Topology.” <i>Science Advances</i> 7, no. 49 (2021). <a href=\"https://doi.org/10.1126/sciadv.abl3903\">https://doi.org/10.1126/sciadv.abl3903</a>.","ieee":"J. Lu <i>et al.</i>, “Observing 0D subwavelength-localized modes at ~100 THz protected by weak topology,” <i>Science Advances</i>, vol. 7, no. 49, Art. no. eabl3903, 2021, doi: <a href=\"https://doi.org/10.1126/sciadv.abl3903\">10.1126/sciadv.abl3903</a>.","apa":"Lu, J., Wirth, K. G., Gao, W., Heßler, A., Sain, B., Taubner, T., &#38; Zentgraf, T. (2021). Observing 0D subwavelength-localized modes at ~100 THz protected by weak topology. <i>Science Advances</i>, <i>7</i>(49), Article eabl3903. <a href=\"https://doi.org/10.1126/sciadv.abl3903\">https://doi.org/10.1126/sciadv.abl3903</a>","bibtex":"@article{Lu_Wirth_Gao_Heßler_Sain_Taubner_Zentgraf_2021, title={Observing 0D subwavelength-localized modes at ~100 THz protected by weak topology}, volume={7}, DOI={<a href=\"https://doi.org/10.1126/sciadv.abl3903\">10.1126/sciadv.abl3903</a>}, number={49eabl3903}, journal={Science Advances}, author={Lu, Jinlong and Wirth, Konstantin G. and Gao, Wenlong and Heßler, Andreas and Sain, Basudeb and Taubner, Thomas and Zentgraf, Thomas}, year={2021} }","ama":"Lu J, Wirth KG, Gao W, et al. Observing 0D subwavelength-localized modes at ~100 THz protected by weak topology. <i>Science Advances</i>. 2021;7(49). doi:<a href=\"https://doi.org/10.1126/sciadv.abl3903\">10.1126/sciadv.abl3903</a>","mla":"Lu, Jinlong, et al. “Observing 0D Subwavelength-Localized Modes at ~100 THz Protected by Weak Topology.” <i>Science Advances</i>, vol. 7, no. 49, eabl3903, 2021, doi:<a href=\"https://doi.org/10.1126/sciadv.abl3903\">10.1126/sciadv.abl3903</a>."},"ddc":["530"],"user_id":"30525","volume":7,"_id":"28255","has_accepted_license":"1","status":"public","type":"journal_article","department":[{"_id":"15"},{"_id":"230"},{"_id":"289"},{"_id":"623"}],"file":[{"creator":"zentgraf","date_created":"2022-03-03T07:24:44Z","date_updated":"2022-03-03T07:24:44Z","relation":"main_file","file_size":2609760,"access_level":"closed","file_name":"2021_ScienceAdv_TopologicalMode_Manuscript_Arxiv.pdf","success":1,"content_type":"application/pdf","file_id":"30197"}],"date_created":"2021-12-02T19:40:56Z","abstract":[{"lang":"eng","text":"Topological photonic crystals (TPhCs) provide robust manipulation of light with built-in immunity to fabrication tolerances and disorder. Recently, it was shown that TPhCs based on weak topology with a dislocation inherit this robustness and further host topologically protected lower-dimensional localized modes. However, TPhCs with weak topology at optical frequencies have not been demonstrated so far. Here, we use scattering-type scanning near-field optical microscopy to verify mid-bandgap zero-dimensional light localization close to 100 THz in a TPhC with nontrivial Zak phase and an edge dislocation. We show that because of the weak topology, differently extended dislocation centers induce similarly strong light localization. The experimental results are supported by full-field simulations. Along with the underlying fundamental physics, our results lay a foundation for the application of TPhCs based on weak topology in active topological nanophotonics, and nonlinear and quantum optic integrated devices because of their strong and robust light localization."}],"publication":"Science Advances","issue":"49","doi":"10.1126/sciadv.abl3903","main_file_link":[{"url":"https://www.science.org/doi/10.1126/sciadv.abl3903","open_access":"1"}],"article_number":"eabl3903","language":[{"iso":"eng"}],"date_updated":"2022-03-03T07:25:11Z","publication_status":"published","intvolume":"         7","article_type":"original","title":"Observing 0D subwavelength-localized modes at ~100 THz protected by weak topology","year":"2021","author":[{"first_name":"Jinlong","last_name":"Lu","full_name":"Lu, Jinlong"},{"first_name":"Konstantin G.","last_name":"Wirth","full_name":"Wirth, Konstantin G."},{"last_name":"Gao","first_name":"Wenlong","full_name":"Gao, Wenlong"},{"last_name":"Heßler","first_name":"Andreas","full_name":"Heßler, Andreas"},{"first_name":"Basudeb","last_name":"Sain","full_name":"Sain, Basudeb"},{"last_name":"Taubner","first_name":"Thomas","full_name":"Taubner, Thomas"},{"full_name":"Zentgraf, Thomas","first_name":"Thomas","orcid":"0000-0002-8662-1101","last_name":"Zentgraf","id":"30525"}],"publication_identifier":{"issn":["2375-2548"]}},{"publication":"Science Advances","issue":"31","abstract":[{"text":"<jats:p>Compact and robust cold atom sources are increasingly important for quantum research, especially for transferring cutting-edge quantum science into practical applications. In this study, we report on a novel scheme that uses a metasurface optical chip to replace the conventional bulky optical elements used to produce a cold atomic ensemble with a single incident laser beam, which is split by the metasurface into multiple beams of the desired polarization states. Atom numbers ~10<jats:sup>7</jats:sup> and temperatures (about 35 μK) of relevance to quantum sensing are achieved in a compact and robust fashion. Our work highlights the substantial progress toward fully integrated cold atom quantum devices by exploiting metasurface optical chips, which may have great potential in quantum sensing, quantum computing, and other areas.</jats:p>","lang":"eng"}],"date_created":"2020-08-02T07:22:03Z","department":[{"_id":"15"},{"_id":"230"},{"_id":"289"},{"_id":"623"}],"type":"journal_article","publication_identifier":{"issn":["2375-2548"]},"author":[{"last_name":"Zhu","first_name":"Lingxiao","full_name":"Zhu, Lingxiao"},{"last_name":"Liu","first_name":"Xuan","full_name":"Liu, Xuan"},{"full_name":"Sain, Basudeb","last_name":"Sain","first_name":"Basudeb"},{"full_name":"Wang, Mengyao","last_name":"Wang","first_name":"Mengyao"},{"id":"59792","full_name":"Schlickriede, Christian","last_name":"Schlickriede","first_name":"Christian"},{"last_name":"Tang","first_name":"Yutao","full_name":"Tang, Yutao"},{"last_name":"Deng","first_name":"Junhong","full_name":"Deng, Junhong"},{"first_name":"Kingfai","last_name":"Li","full_name":"Li, Kingfai"},{"full_name":"Yang, Jun","last_name":"Yang","first_name":"Jun"},{"full_name":"Holynski, Michael","last_name":"Holynski","first_name":"Michael"},{"full_name":"Zhang, Shuang","first_name":"Shuang","last_name":"Zhang"},{"full_name":"Zentgraf, Thomas","first_name":"Thomas","orcid":"0000-0002-8662-1101","last_name":"Zentgraf","id":"30525"},{"full_name":"Bongs, Kai","last_name":"Bongs","first_name":"Kai"},{"first_name":"Yu-Hung","last_name":"Lien","full_name":"Lien, Yu-Hung"},{"full_name":"Li, Guixin","first_name":"Guixin","last_name":"Li"}],"title":"A dielectric metasurface optical chip for the generation of cold atoms","year":"2020","intvolume":"         6","article_type":"original","date_updated":"2022-01-06T06:53:14Z","publication_status":"published","language":[{"iso":"eng"}],"article_number":"eabb6667","doi":"10.1126/sciadv.abb6667","citation":{"mla":"Zhu, Lingxiao, et al. “A Dielectric Metasurface Optical Chip for the Generation of Cold Atoms.” <i>Science Advances</i>, vol. 6, no. 31, eabb6667, American Association for the Advancement of Science, 2020, doi:<a href=\"https://doi.org/10.1126/sciadv.abb6667\">10.1126/sciadv.abb6667</a>.","bibtex":"@article{Zhu_Liu_Sain_Wang_Schlickriede_Tang_Deng_Li_Yang_Holynski_et al._2020, title={A dielectric metasurface optical chip for the generation of cold atoms}, volume={6}, DOI={<a href=\"https://doi.org/10.1126/sciadv.abb6667\">10.1126/sciadv.abb6667</a>}, number={31eabb6667}, journal={Science Advances}, publisher={American Association for the Advancement of Science}, author={Zhu, Lingxiao and Liu, Xuan and Sain, Basudeb and Wang, Mengyao and Schlickriede, Christian and Tang, Yutao and Deng, Junhong and Li, Kingfai and Yang, Jun and Holynski, Michael and et al.}, year={2020} }","ama":"Zhu L, Liu X, Sain B, et al. A dielectric metasurface optical chip for the generation of cold atoms. <i>Science Advances</i>. 2020;6(31). doi:<a href=\"https://doi.org/10.1126/sciadv.abb6667\">10.1126/sciadv.abb6667</a>","ieee":"L. Zhu <i>et al.</i>, “A dielectric metasurface optical chip for the generation of cold atoms,” <i>Science Advances</i>, vol. 6, no. 31, 2020.","apa":"Zhu, L., Liu, X., Sain, B., Wang, M., Schlickriede, C., Tang, Y., … Li, G. (2020). A dielectric metasurface optical chip for the generation of cold atoms. <i>Science Advances</i>, <i>6</i>(31). <a href=\"https://doi.org/10.1126/sciadv.abb6667\">https://doi.org/10.1126/sciadv.abb6667</a>","chicago":"Zhu, Lingxiao, Xuan Liu, Basudeb Sain, Mengyao Wang, Christian Schlickriede, Yutao Tang, Junhong Deng, et al. “A Dielectric Metasurface Optical Chip for the Generation of Cold Atoms.” <i>Science Advances</i> 6, no. 31 (2020). <a href=\"https://doi.org/10.1126/sciadv.abb6667\">https://doi.org/10.1126/sciadv.abb6667</a>.","short":"L. Zhu, X. Liu, B. Sain, M. Wang, C. Schlickriede, Y. Tang, J. Deng, K. Li, J. Yang, M. Holynski, S. Zhang, T. Zentgraf, K. Bongs, Y.-H. Lien, G. Li, Science Advances 6 (2020)."},"quality_controlled":"1","status":"public","publisher":"American Association for the Advancement of Science","_id":"17523","volume":6,"user_id":"30525"},{"volume":6,"user_id":"60250","publisher":"American Association for the Advancement of Science (AAAS)","_id":"34302","status":"public","citation":{"short":"H. Elgabarty, T. Kampfrath, D.J. Bonthuis, V. Balos, N.K. Kaliannan, P. Loche, R.R. Netz, M. Wolf, T. Kühne, M. Sajadi, Science Advances 6 (2020).","chicago":"Elgabarty, Hossam, Tobias Kampfrath, Douwe Jan Bonthuis, Vasileios Balos, Naveen Kumar Kaliannan, Philip Loche, Roland R. Netz, Martin Wolf, Thomas Kühne, and Mohsen Sajadi. “Energy Transfer within the Hydrogen Bonding Network of Water Following Resonant Terahertz Excitation.” <i>Science Advances</i> 6, no. 17 (2020). <a href=\"https://doi.org/10.1126/sciadv.aay7074\">https://doi.org/10.1126/sciadv.aay7074</a>.","apa":"Elgabarty, H., Kampfrath, T., Bonthuis, D. J., Balos, V., Kaliannan, N. K., Loche, P., Netz, R. R., Wolf, M., Kühne, T., &#38; Sajadi, M. (2020). Energy transfer within the hydrogen bonding network of water following resonant terahertz excitation. <i>Science Advances</i>, <i>6</i>(17). <a href=\"https://doi.org/10.1126/sciadv.aay7074\">https://doi.org/10.1126/sciadv.aay7074</a>","ieee":"H. Elgabarty <i>et al.</i>, “Energy transfer within the hydrogen bonding network of water following resonant terahertz excitation,” <i>Science Advances</i>, vol. 6, no. 17, 2020, doi: <a href=\"https://doi.org/10.1126/sciadv.aay7074\">10.1126/sciadv.aay7074</a>.","ama":"Elgabarty H, Kampfrath T, Bonthuis DJ, et al. Energy transfer within the hydrogen bonding network of water following resonant terahertz excitation. <i>Science Advances</i>. 2020;6(17). doi:<a href=\"https://doi.org/10.1126/sciadv.aay7074\">10.1126/sciadv.aay7074</a>","bibtex":"@article{Elgabarty_Kampfrath_Bonthuis_Balos_Kaliannan_Loche_Netz_Wolf_Kühne_Sajadi_2020, title={Energy transfer within the hydrogen bonding network of water following resonant terahertz excitation}, volume={6}, DOI={<a href=\"https://doi.org/10.1126/sciadv.aay7074\">10.1126/sciadv.aay7074</a>}, number={17}, journal={Science Advances}, publisher={American Association for the Advancement of Science (AAAS)}, author={Elgabarty, Hossam and Kampfrath, Tobias and Bonthuis, Douwe Jan and Balos, Vasileios and Kaliannan, Naveen Kumar and Loche, Philip and Netz, Roland R. and Wolf, Martin and Kühne, Thomas and Sajadi, Mohsen}, year={2020} }","mla":"Elgabarty, Hossam, et al. “Energy Transfer within the Hydrogen Bonding Network of Water Following Resonant Terahertz Excitation.” <i>Science Advances</i>, vol. 6, no. 17, American Association for the Advancement of Science (AAAS), 2020, doi:<a href=\"https://doi.org/10.1126/sciadv.aay7074\">10.1126/sciadv.aay7074</a>."},"doi":"10.1126/sciadv.aay7074","language":[{"iso":"eng"}],"intvolume":"         6","date_updated":"2022-12-09T12:20:59Z","publication_status":"published","publication_identifier":{"issn":["2375-2548"]},"author":[{"full_name":"Elgabarty, Hossam","first_name":"Hossam","last_name":"Elgabarty","orcid":"0000-0002-4945-1481","id":"60250"},{"full_name":"Kampfrath, Tobias","last_name":"Kampfrath","first_name":"Tobias"},{"full_name":"Bonthuis, Douwe Jan","first_name":"Douwe Jan","last_name":"Bonthuis"},{"full_name":"Balos, Vasileios","first_name":"Vasileios","last_name":"Balos"},{"last_name":"Kaliannan","first_name":"Naveen Kumar","full_name":"Kaliannan, Naveen Kumar"},{"full_name":"Loche, Philip","last_name":"Loche","first_name":"Philip"},{"full_name":"Netz, Roland R.","first_name":"Roland R.","last_name":"Netz"},{"last_name":"Wolf","first_name":"Martin","full_name":"Wolf, Martin"},{"full_name":"Kühne, Thomas","last_name":"Kühne","first_name":"Thomas","id":"49079"},{"full_name":"Sajadi, Mohsen","first_name":"Mohsen","last_name":"Sajadi"}],"title":"Energy transfer within the hydrogen bonding network of water following resonant terahertz excitation","year":"2020","type":"journal_article","keyword":["Multidisciplinary"],"date_created":"2022-12-09T12:09:29Z","abstract":[{"text":"<jats:p>Energy flow in the hydrogen bonding network of water is traced by resonant terahertz excitation and off-resonant optical probing.</jats:p>","lang":"eng"}],"publication":"Science Advances","issue":"17"},{"department":[{"_id":"15"},{"_id":"569"},{"_id":"170"},{"_id":"293"},{"_id":"230"},{"_id":"623"},{"_id":"429"},{"_id":"35"}],"type":"journal_article","keyword":["Multidisciplinary"],"date_created":"2023-01-18T10:35:19Z","abstract":[{"text":"<jats:p>An integrated chip with quantum state generation, active polarization manipulation, and precise time control is demonstrated.</jats:p>","lang":"eng"}],"issue":"1","publication":"Science Advances","doi":"10.1126/sciadv.aat1451","language":[{"iso":"eng"}],"intvolume":"         5","publication_status":"published","date_updated":"2023-04-21T11:25:39Z","author":[{"orcid":"0000-0003-1008-4976","last_name":"Luo","first_name":"Kai-Hong","full_name":"Luo, Kai-Hong","id":"36389"},{"last_name":"Brauner","first_name":"Sebastian","full_name":"Brauner, Sebastian","id":"38161"},{"last_name":"Eigner","orcid":"https://orcid.org/0000-0002-5693-3083","first_name":"Christof","full_name":"Eigner, Christof","id":"13244"},{"full_name":"Sharapova, Polina","last_name":"Sharapova","first_name":"Polina","id":"60286"},{"full_name":"Ricken, Raimund","last_name":"Ricken","first_name":"Raimund"},{"id":"344","last_name":"Meier","first_name":"Torsten","orcid":"0000-0001-8864-2072","full_name":"Meier, Torsten"},{"id":"216","last_name":"Herrmann","first_name":"Harald","full_name":"Herrmann, Harald"},{"id":"26263","full_name":"Silberhorn, Christine","last_name":"Silberhorn","first_name":"Christine"}],"publication_identifier":{"issn":["2375-2548"]},"year":"2019","title":"Nonlinear integrated quantum electro-optic circuits","project":[{"_id":"53","name":"TRR 142: TRR 142"},{"name":"TRR 142 - C: TRR 142 - Project Area C","_id":"56"},{"name":"TRR 142 - C2: TRR 142 - Subproject C2","_id":"72"},{"_id":"52","name":"PC2: Computing Resources Provided by the Paderborn Center for Parallel Computing"}],"citation":{"apa":"Luo, K.-H., Brauner, S., Eigner, C., Sharapova, P., Ricken, R., Meier, T., Herrmann, H., &#38; Silberhorn, C. (2019). Nonlinear integrated quantum electro-optic circuits. <i>Science Advances</i>, <i>5</i>(1). <a href=\"https://doi.org/10.1126/sciadv.aat1451\">https://doi.org/10.1126/sciadv.aat1451</a>","ieee":"K.-H. Luo <i>et al.</i>, “Nonlinear integrated quantum electro-optic circuits,” <i>Science Advances</i>, vol. 5, no. 1, 2019, doi: <a href=\"https://doi.org/10.1126/sciadv.aat1451\">10.1126/sciadv.aat1451</a>.","short":"K.-H. Luo, S. Brauner, C. Eigner, P. Sharapova, R. Ricken, T. Meier, H. Herrmann, C. Silberhorn, Science Advances 5 (2019).","chicago":"Luo, Kai-Hong, Sebastian Brauner, Christof Eigner, Polina Sharapova, Raimund Ricken, Torsten Meier, Harald Herrmann, and Christine Silberhorn. “Nonlinear Integrated Quantum Electro-Optic Circuits.” <i>Science Advances</i> 5, no. 1 (2019). <a href=\"https://doi.org/10.1126/sciadv.aat1451\">https://doi.org/10.1126/sciadv.aat1451</a>.","mla":"Luo, Kai-Hong, et al. “Nonlinear Integrated Quantum Electro-Optic Circuits.” <i>Science Advances</i>, vol. 5, no. 1, American Association for the Advancement of Science (AAAS), 2019, doi:<a href=\"https://doi.org/10.1126/sciadv.aat1451\">10.1126/sciadv.aat1451</a>.","ama":"Luo K-H, Brauner S, Eigner C, et al. Nonlinear integrated quantum electro-optic circuits. <i>Science Advances</i>. 2019;5(1). doi:<a href=\"https://doi.org/10.1126/sciadv.aat1451\">10.1126/sciadv.aat1451</a>","bibtex":"@article{Luo_Brauner_Eigner_Sharapova_Ricken_Meier_Herrmann_Silberhorn_2019, title={Nonlinear integrated quantum electro-optic circuits}, volume={5}, DOI={<a href=\"https://doi.org/10.1126/sciadv.aat1451\">10.1126/sciadv.aat1451</a>}, number={1}, journal={Science Advances}, publisher={American Association for the Advancement of Science (AAAS)}, author={Luo, Kai-Hong and Brauner, Sebastian and Eigner, Christof and Sharapova, Polina and Ricken, Raimund and Meier, Torsten and Herrmann, Harald and Silberhorn, Christine}, year={2019} }"},"volume":5,"user_id":"16199","_id":"37288","publisher":"American Association for the Advancement of Science (AAAS)","status":"public"},{"doi":"10.1126/sciadv.aar6444","user_id":"48188","_id":"26517","language":[{"iso":"eng"}],"date_updated":"2022-01-06T06:57:21Z","publication_status":"published","author":[{"full_name":"Nitsche, Thomas","first_name":"Thomas","last_name":"Nitsche"},{"last_name":"Barkhofen","first_name":"Sonja","full_name":"Barkhofen, Sonja","id":"48188"},{"full_name":"Kruse, Regina","last_name":"Kruse","first_name":"Regina"},{"full_name":"Sansoni, Linda","last_name":"Sansoni","first_name":"Linda"},{"full_name":"Štefaňák, Martin","first_name":"Martin","last_name":"Štefaňák"},{"full_name":"Gábris, Aurél","first_name":"Aurél","last_name":"Gábris"},{"last_name":"Potoček","first_name":"Václav","full_name":"Potoček, Václav"},{"full_name":"Kiss, Tamás","first_name":"Tamás","last_name":"Kiss"},{"full_name":"Jex, Igor","first_name":"Igor","last_name":"Jex"},{"id":"26263","full_name":"Silberhorn, Christine","last_name":"Silberhorn","first_name":"Christine"}],"publication_identifier":{"issn":["2375-2548"]},"title":"Probing measurement-induced effects in quantum walks via recurrence","year":"2018","status":"public","type":"journal_article","date_created":"2021-10-19T07:29:06Z","citation":{"ama":"Nitsche T, Barkhofen S, Kruse R, et al. Probing measurement-induced effects in quantum walks via recurrence. <i>Science Advances</i>. 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Nitsche, S. Barkhofen, R. Kruse, L. Sansoni, M. Štefaňák, A. Gábris, V. Potoček, T. Kiss, I. Jex, C. Silberhorn, Science Advances (2018).","apa":"Nitsche, T., Barkhofen, S., Kruse, R., Sansoni, L., Štefaňák, M., Gábris, A., Potoček, V., Kiss, T., Jex, I., &#38; Silberhorn, C. (2018). Probing measurement-induced effects in quantum walks via recurrence. <i>Science Advances</i>. <a href=\"https://doi.org/10.1126/sciadv.aar6444\">https://doi.org/10.1126/sciadv.aar6444</a>","ieee":"T. Nitsche <i>et al.</i>, “Probing measurement-induced effects in quantum walks via recurrence,” <i>Science Advances</i>, 2018, doi: <a href=\"https://doi.org/10.1126/sciadv.aar6444\">10.1126/sciadv.aar6444</a>."},"publication":"Science Advances"},{"publication_status":"published","date_updated":"2022-01-06T07:03:17Z","intvolume":"         3","status":"public","year":"2017","title":"Single-pixel computational ghost imaging with helicity-dependent metasurface hologram","author":[{"full_name":"Liu, Hong-Chao","first_name":"Hong-Chao","last_name":"Liu"},{"first_name":"Biao","last_name":"Yang","full_name":"Yang, Biao"},{"last_name":"Guo","first_name":"Qinghua","full_name":"Guo, Qinghua"},{"first_name":"Jinhui","last_name":"Shi","full_name":"Shi, Jinhui"},{"first_name":"Chunying","last_name":"Guan","full_name":"Guan, Chunying"},{"first_name":"Guoxing","last_name":"Zheng","full_name":"Zheng, Guoxing"},{"full_name":"Mühlenbernd, Holger","last_name":"Mühlenbernd","first_name":"Holger"},{"last_name":"Li","first_name":"Guixin","full_name":"Li, Guixin"},{"full_name":"Zentgraf, Thomas","last_name":"Zentgraf","orcid":"0000-0002-8662-1101","first_name":"Thomas","id":"30525"},{"last_name":"Zhang","first_name":"Shuang","full_name":"Zhang, Shuang"}],"publication_identifier":{"issn":["2375-2548"]},"user_id":"30525","doi":"10.1126/sciadv.1701477","volume":3,"article_number":"e1701477","_id":"677","publisher":"American Association for the Advancement of Science (AAAS)","issue":"9","publication":"Science Advances","citation":{"mla":"Liu, Hong-Chao, et al. “Single-Pixel Computational Ghost Imaging with Helicity-Dependent Metasurface Hologram.” <i>Science Advances</i>, vol. 3, no. 9, e1701477, American Association for the Advancement of Science (AAAS), 2017, doi:<a href=\"https://doi.org/10.1126/sciadv.1701477\">10.1126/sciadv.1701477</a>.","ama":"Liu H-C, Yang B, Guo Q, et al. Single-pixel computational ghost imaging with helicity-dependent metasurface hologram. <i>Science Advances</i>. 2017;3(9). doi:<a href=\"https://doi.org/10.1126/sciadv.1701477\">10.1126/sciadv.1701477</a>","bibtex":"@article{Liu_Yang_Guo_Shi_Guan_Zheng_Mühlenbernd_Li_Zentgraf_Zhang_2017, title={Single-pixel computational ghost imaging with helicity-dependent metasurface hologram}, volume={3}, DOI={<a href=\"https://doi.org/10.1126/sciadv.1701477\">10.1126/sciadv.1701477</a>}, number={9e1701477}, journal={Science Advances}, publisher={American Association for the Advancement of Science (AAAS)}, author={Liu, Hong-Chao and Yang, Biao and Guo, Qinghua and Shi, Jinhui and Guan, Chunying and Zheng, Guoxing and Mühlenbernd, Holger and Li, Guixin and Zentgraf, Thomas and Zhang, Shuang}, year={2017} }","apa":"Liu, H.-C., Yang, B., Guo, Q., Shi, J., Guan, C., Zheng, G., … Zhang, S. (2017). Single-pixel computational ghost imaging with helicity-dependent metasurface hologram. <i>Science Advances</i>, <i>3</i>(9). <a href=\"https://doi.org/10.1126/sciadv.1701477\">https://doi.org/10.1126/sciadv.1701477</a>","ieee":"H.-C. Liu <i>et al.</i>, “Single-pixel computational ghost imaging with helicity-dependent metasurface hologram,” <i>Science Advances</i>, vol. 3, no. 9, 2017.","chicago":"Liu, Hong-Chao, Biao Yang, Qinghua Guo, Jinhui Shi, Chunying Guan, Guoxing Zheng, Holger Mühlenbernd, Guixin Li, Thomas Zentgraf, and Shuang Zhang. “Single-Pixel Computational Ghost Imaging with Helicity-Dependent Metasurface Hologram.” <i>Science Advances</i> 3, no. 9 (2017). <a href=\"https://doi.org/10.1126/sciadv.1701477\">https://doi.org/10.1126/sciadv.1701477</a>.","short":"H.-C. Liu, B. Yang, Q. Guo, J. Shi, C. Guan, G. Zheng, H. Mühlenbernd, G. Li, T. Zentgraf, S. Zhang, Science Advances 3 (2017)."},"type":"journal_article","date_created":"2017-11-13T07:34:50Z"}]
