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Among all the different design approaches, gap-surface plasmon metasurfaces – a specific branch of plasmonic metasurfaces – which consist of a subwavelength thin dielectric spacer sandwiched between an optically thick metal film and arrays of metal subwavelength elements arranged in a strictly or quasi-periodic fashion, have gained awareness from researchers working at practically any frequency regime as its realization only requires a single lithographic step, yet with the possibility to fully control the amplitude, phase, and polarization of the reflected light. In this paper, we review the fundamentals, recent developments, and opportunities of gap-surface plasmon metasurfaces. Starting with introducing the concept of gap-surface plasmon metasurfaces, we present three typical gap-surface plasmon resonators, introduce generalized Snell’s law, and explain the concept of Pancharatnam-Berry phase. We then overview the main applications of gap-surface plasmon metasurfaces, including beam-steerers, flat lenses, holograms, absorbers, color printing, polarization control, surface wave couplers, and dynamically reconfigurable metasurfaces. The review is ended with a short summary and outlook on possible future developments.\u003C\u002Fjats:p>",{"EN":178},"A review of gap-surface plasmon metasurfaces: fundamentals and applications",{"VOID":180},"10.1515\u002Fnanoph-2017-0125","PUBLICATION","VERIFIED","2024-10-16T21:19:10.733+00:00","Auto Verify",[186],"EN","https:\u002F\u002Fwww.degruyter.com\u002Fdocument\u002Fdoi\u002F10.1515\u002Fnanoph-2017-0125\u002Fhtml",[189,210,228,245],{"id":190,"sortIndex":129,"researcher":23,"roles":191,"affiliations":192,"properties":203},"8a63cdf7-2afa-4451-9d92-fa55f53d81bd",[],[193],{"id":194,"sortIndex":24,"affiliation":195,"properties":23},"d5af4175-e9e4-44bd-b6e4-5b7b6ce4deca",{"id":196,"createTime":197,"updateTime":197,"relativeEntities":198,"slug":199,"properties":200,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},"f4a2b985-d907-4ef4-b185-23d92bf38650","2024-10-16T21:19:10.750+00:00",[],"SDU-Nano-Optics-University-of-Southern-Denmark-Campusvej-55-DK-5230-Odense-Denmark",{"title":201},{"EN":202},"SDU Nano Optics, University of Southern Denmark, Campusvej 55, DK-5230 Odense, Denmark",{"openalex":204,"orcid":206,"title":208},{"VOID":205},"A5070415188",{"VOID":207},"https:\u002F\u002Forcid.org\u002F0000-0002-0393-4859",{"EN":209},"Sergey I. 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10.1088\u002F0034-4885\u002F79\u002F7\u002F076401",{"doi":332},"10.1088\u002F0034-4885\u002F79\u002F7\u002F076401",{"id":23,"text":334,"url":23,"identifiers":335},"2012, The golden age: gold nanoparticles for biomedicine, Chem Soc Rev, 41, 2740, 10.1039\u002FC1CS15237H",{"doi":336},"10.1039\u002FC1CS15237H",{"id":23,"text":338,"url":23,"identifiers":339},"2011, Terahertz metamaterial modulators based on absorption, Prog Electromagn Res, 119, 449, 10.2528\u002FPIER11061304",{"doi":340},"10.2528\u002FPIER11061304",{"id":23,"text":342,"url":23,"identifiers":343},"2014, Anomalous behavior of nearly-entire visible band manipulated with degenerated image dipole array, Nanoscale, 6, 12303, 10.1039\u002FC4NR03163F",{"doi":344},"10.1039\u002FC4NR03163F",{"id":23,"text":346,"url":23,"identifiers":347},"2011, Structural colors: from plasmonic to carbon nanostructures, Small, 7, 3128, 10.1002\u002Fsmll.201101068",{"doi":348},"10.1002\u002Fsmll.201101068",{"id":23,"text":350,"url":23,"identifiers":351},"2012, Spatial and spectral light shaping with metamaterials, Adv Mater, 24, 6300, 10.1002\u002Fadma.201202540",{"doi":352},"10.1002\u002Fadma.201202540",{"id":23,"text":354,"url":23,"identifiers":355},"2016, Full-polarization 3D metasurface cloak with preserved amplitude and phase, Adv Mater, 28, 6866, 10.1002\u002Fadma.201600625",{"doi":356},"10.1002\u002Fadma.201600625",{"id":23,"text":358,"url":23,"identifiers":359},"2015, Visible-frequency metasurfaces for broadband anomalous reflection and high-efficiency spectrum splitting, Nano Lett, 15, 1615, 10.1021\u002Fnl5041572",{"doi":360},"10.1021\u002Fnl5041572",{"id":23,"text":362,"url":23,"identifiers":363},"2013, Bozhevolnyi. Broadband plasmonic half-wave plates in reflection, Opt Lett, 38, 513, 10.1364\u002FOL.38.000513",{"doi":364},"10.1364\u002FOL.38.000513",{"id":23,"text":366,"url":23,"identifiers":367},"2016, Broadband near-infrared metamaterial absorbers utilizing highly lossy metals, Sci Rep, 6, 39445, 10.1038\u002Fsrep39445",{"doi":368},"10.1038\u002Fsrep39445",{"id":23,"text":370,"url":23,"identifiers":371},"2013, An ultrathin directional carpet cloak based on generalized Snell’s law, Appl Phys Lett, 103, 151115, 10.1063\u002F1.4824898",{"doi":372},"10.1063\u002F1.4824898",{"id":23,"text":374,"url":23,"identifiers":375},"2015, Graphene: a dynamic platform for electrical control of plasmonic resonance, Nanophotonics, 4, 214, 10.1515\u002Fnanoph-2015-0014",{"doi":376},"10.1515\u002Fnanoph-2015-0014",{"id":23,"text":378,"url":23,"identifiers":379},"2016, Experimental demonstration of graphene plasmons working close to the near-infrared window, Opt Lett, 41, 5345, 10.1364\u002FOL.41.005345",{"doi":380},"10.1364\u002FOL.41.005345",{"id":23,"text":382,"url":23,"identifiers":383},"2015, Plasmon-enhanced second-harmonic generation nanorulers with ultrahigh sensitivities, Nano Lett, 15, 6716, 10.1021\u002Facs.nanolett.5b02569",{"doi":384},"10.1021\u002Facs.nanolett.5b02569",{"id":23,"text":386,"url":23,"identifiers":387},"2017, Martin. 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10.1021\u002Fph500276v",{"doi":1128},"10.1021\u002Fph500276v",false,{"id":1131,"createTime":1132,"updateTime":1132,"relativeEntities":1133,"slug":1134,"properties":1135,"entityType":181,"verifyStatus":182,"verifyTime":1132,"verifyNote":184,"syncStatus":22,"languages":1149,"translateLanguages":23,"viewCount":24,"primaryUrl":1150,"fullTextUrl":23,"authors":1151,"publicationType":262,"publisherRelationship":1286,"citationCount":159,"citationInfo":1324,"publishDate":1326,"publishYear":1327,"citationAnalyzeStatus":22,"lastCitationAnalyze":23,"indexDatabases":23,"openAccess":23,"references":1328,"isForceReanalyzing":1129},"5939878e-d58b-4bc1-a806-41cc53794b6e","2024-10-09T19:24:37.788+00:00",[],"Photodynamic-priming-with-triple-receptor-targeted-nanoconjugates-that-trigger-T-cell-mediated-immune-responses-in-a-3D-i-in-vitro-i-heterocellular-model-of-pancreatic-cancer",{"mag":1136,"keywords":1138,"openalex":1139,"abstract":1141,"title":1143,"pm":1145,"doi":1147},{"VOID":1137},"3196254557",{},{"VOID":1140},"W3196254557",{"EN":1142},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\n               \u003Cjats:p>Photodynamic priming (\u003Cjats:italic>PDP\u003C\u002Fjats:italic>), a collateral effect of photodynamic therapy, can transiently alter the tumor microenvironment (TME) beyond the cytotoxic zone. Studies have demonstrated that \u003Cjats:italic>PDP\u003C\u002Fjats:italic> increases tumor permeability and modulates immune-stimulatory effects by inducing immunogenic cell death, via the release of damage-associated molecular patterns and tumor-associated antigens. Pancreatic ductal adenocarcinoma (PDAC) is one of the deadliest of cancers with a stubborn immunosuppressive TME and a dense stroma, representing a challenge for current molecular targeted therapies often involving macromolecules. We, therefore, tested the hypothesis that PDP’s TME modulation will enable targeted therapy and result in immune stimulation. Using triple-receptor-targeted photoimmuno-nanoconjugate (TR-PINs)-mediated \u003Cjats:italic>PDP\u003C\u002Fjats:italic>, targeting epidermal growth factor receptor, transferrin receptor, and human epidermal growth factor receptor 2 we show light dose-dependent TR-PINs mediated cytotoxicity in human PDAC cells (MIA PaCa-2), co-cultured with human pancreatic cancer-associated fibroblasts (PCAFs) in spheroids. Furthermore, TR-PINs induced the expression of heat shock proteins (Hsp60, Hsp70), Calreticulin, and high mobility group box 1 in a light dose and time-dependent manner. TR-PINs-mediated T cell activation was observed in co-cultures of immune cells with the MIA PaCa-2-PCAF spheroids. Both CD4\u003Cjats:sup>+\u003C\u002Fjats:sup> T and CD8\u003Cjats:sup>+\u003C\u002Fjats:sup> T cells showed light dose and time-dependant antitumor reactivity by upregulating degranulation marker CD107a and interferon-gamma post-PDP. Substantial tumor cell death in immune cell-spheroid co-cultures by day 3 shows the augmentation by antitumor T cell activation and their ability to recognize tumors for a light dose-dependent kill. These data confirm enhanced destruction of heterogeneous pancreatic spheroids mediated by \u003Cjats:italic>PDP\u003C\u002Fjats:italic>-induced phototoxicity, TME modulation and increased immunogenicity with targeted nanoconstructs.\u003C\u002Fjats:p>",{"EN":1144},"Photodynamic priming with triple-receptor targeted nanoconjugates that trigger T cell-mediated immune responses in a 3D \u003Ci>in vitro\u003C\u002Fi> heterocellular model of pancreatic cancer",{"VOID":1146},"37485044",{"VOID":1148},"10.1515\u002Fnanoph-2021-0304",[186],"https:\u002F\u002Fwww.degruyter.com\u002Fdocument\u002Fdoi\u002F10.1515\u002Fnanoph-2021-0304\u002Fhtml",[1152,1174,1196,1213,1242,1264],{"id":1153,"sortIndex":212,"researcher":23,"roles":1154,"affiliations":1155,"properties":1167},"e00efef8-427c-4a29-bf9f-6320e52e55f1",[],[1156],{"id":1157,"sortIndex":24,"affiliation":1158,"properties":23},"48315c27-e31b-4adf-8ae4-5dafcbc50ead",{"id":1159,"createTime":1160,"updateTime":1161,"relativeEntities":1162,"slug":1163,"properties":1164,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},"1666be20-8791-4bd1-8aaa-5ab06b1d8ce1","2024-01-18T16:08:15.490+00:00","2024-10-09T19:24:37.803+00:00",[],"Wellman-Center-for-Photomedicine-Massachusetts-General-Hospital-Harvard-Medical-School-Boston-MA-02114-USA",{"title":1165},{"VI":1166},"Wellman Center for Photomedicine, Massachusetts General Hospital, Harvard Medical School, Boston, MA, 02114, USA",{"openalex":1168,"orcid":1170,"title":1172},{"VOID":1169},"A5049585562",{"VOID":1171},"https:\u002F\u002Forcid.org\u002F0000-0002-8870-3805",{"EN":1173},"Shazia Bano",{"id":1175,"sortIndex":129,"researcher":23,"roles":1176,"affiliations":1177,"properties":1189},"81929549-b46a-4ce8-a5c8-4d3507b328ea",[],[1178],{"id":1179,"sortIndex":24,"affiliation":1180,"properties":23},"fc6c9691-f874-4177-82c1-3d55bf282949",{"id":1181,"createTime":1182,"updateTime":1183,"relativeEntities":1184,"slug":1185,"properties":1186,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},"6185ab47-d127-47ab-8abe-4b293e7ff1b5","2023-12-06T23:16:23.683+00:00","2024-10-09T19:24:37.841+00:00",[],"Division-of-Gastroenterology-and-Hepatology-Mayo-Clinic-Rochester-MN-55905-USA",{"title":1187},{"VI":1188},"Division of Gastroenterology and Hepatology, Mayo Clinic, Rochester, MN 55905, USA",{"openalex":1190,"orcid":1192,"title":1194},{"VOID":1191},"A5002493916",{"VOID":1193},"https:\u002F\u002Forcid.org\u002F0000-0002-2156-6164",{"EN":1195},"Kenneth K. 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Mielgo, “Cancer-associated fibroblast mediated inhibition of CD8+ cytotoxic T cell accumulation in tumours: mechanisms and therapeutic opportunities,” Cancers, vol. 12, no. 9, p. 2687, 2020, https:\u002F\u002Fdoi.org\u002F10.3390\u002Fcancers12092687.",{"doi":1625},"10.3390\u002Fcancers12092687",{"id":23,"text":1627,"url":23,"identifiers":1628},"X. Duan, C. Chan, W. Han, N. Guo, R. R. Weichselbaum, and W. Lin, “Immunostimulatory nanomedicines synergize with checkpoint blockade immunotherapy to eradicate colorectal tumors,” Nat. Commun., vol. 10, no. 1, p. 1899, 2019, https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41467-019-09221-x.",{"doi":1629},"10.1038\u002Fs41467-019-09221-x",{"id":23,"text":1631,"url":23,"identifiers":1632},"M. Korbelik, J. Sun, and J. J. Posakony, “Interaction between photodynamic therapy and BCG immunotherapy responsible for the reduced recurrence of treated mouse tumors,” Photochem. Photobiol., vol. 73, no. 4, pp. 403–409, 2001, https:\u002F\u002Fdoi.org\u002F10.1562\u002F0031-8655(2001)073\u003C0403:ibptab>2.0.co;2.",{"doi":1633},"10.1562\u002F0031-8655(2001)073\u003C0403:IBPTAB>2.0.CO;2",{"id":23,"text":1635,"url":23,"identifiers":1636},"Z. Li, C. Wang, H. Deng, et al.., “Robust photodynamic therapy using 5-ALA-incorporated nanocomplexes cures metastatic melanoma through priming of CD4(+)CD8(+) double positive T cells,” Adv. Sci., vol. 6, no. 5, p. 1802057, 2019, https:\u002F\u002Fdoi.org\u002F10.1002\u002Fadvs.201802057.",{"doi":1637},"10.1002\u002Fadvs.201802057",{"id":23,"text":1639,"url":23,"identifiers":1640},"E. Kabingu, L. Vaughan, B. Owczarczak, K. D. Ramsey, and S. O. Gollnick, “CD8+ T cell-mediated control of distant tumours following local photodynamic therapy is independent of CD4+ T cells and dependent on natural killer cells,” Br. J. Canc., vol. 96, no. 12, pp. 1839–1848, 2007, https:\u002F\u002Fdoi.org\u002F10.1038\u002Fsj.bjc.6603792.",{"doi":1641},"10.1038\u002Fsj.bjc.6603792",{"id":23,"text":1643,"url":23,"identifiers":1644},"H. S. Hwang, K. Cherukula, Y. J. Bang, et al.., “Combination of photodynamic therapy and a flagellin-adjuvanted cancer vaccine potentiated the anti-PD-1-mediated melanoma suppression,” Cells, vol. 9, no. 11, 2020, https:\u002F\u002Fdoi.org\u002F10.3390\u002Fcells9112432.",{"doi":1645},"10.3390\u002Fcells9112432",{"id":23,"text":1647,"url":23,"identifiers":1648},"D. Wang, T. Wang, H. Yu, et al.., “Engineering nanoparticles to locally activate T cells in the tumor microenvironment,” Sci. 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The ionic liquid-phase Ag coating is easily obtained by spin-coating ionic Ag ink that has appropriate Ag concentration and can be either printed or imprinted on the desired substrate by using a soft elastomer patterning mold, then reduced to the Ag nanostructure by subsequent thermal annealing. More specifically, we present two methods: transfer printing and soft nanoimprinting. In transfer printing, the ionic Ag ink is first inked onto the elastomer mold which then contacts the target substrate to transfer the Ag nanopattern. In soft nanoimprinting, the elastomer mold conducts soft imprinting to engineer the ionic Ag ink coating to the Ag nanostructure. We systematically investigate the optimal patterning conditions by controlling the initial Ag ink concentration and the coating, printing, imprinting, and annealing conditions, to derive Ag architecture that has tunable photonic functionality. As an example, we demonstrate polarization-sensitive reflective color filters that exploit shape-tunable Ag nanostructures fabricated by soft nanoimprinting using a controllably-stretched elastomer mold.\u003C\u002Fjats:p>",{"EN":1662},"Facile fabrication of stretchable photonic Ag nanostructures by soft-contact patterning of ionic Ag solution 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Mater., vol. 29, p. 1902720, 2019. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fadfm.201902720.",{"doi":2099},"10.1002\u002Fadfm.201902720",{"id":2101,"createTime":2102,"updateTime":2102,"relativeEntities":2103,"slug":2104,"properties":2105,"entityType":181,"verifyStatus":182,"verifyTime":2102,"verifyNote":184,"syncStatus":22,"languages":2117,"translateLanguages":23,"viewCount":24,"primaryUrl":2118,"fullTextUrl":23,"authors":2119,"publicationType":262,"publisherRelationship":2218,"citationCount":2256,"citationInfo":2257,"publishDate":2264,"publishYear":2265,"citationAnalyzeStatus":22,"lastCitationAnalyze":23,"indexDatabases":23,"openAccess":23,"references":2266,"isForceReanalyzing":1129},"629e75a4-170d-4662-849c-0aaa3ba1999c","2025-01-30T16:38:08.500+00:00",[],"Indium-Tin-Oxide-for-High-performance-Electro-optic-Modulation",{"mag":2106,"keywords":2108,"openalex":2109,"abstract":2111,"title":2113,"doi":2115},{"VOID":2107},"2238509365",{},{"VOID":2110},"W2238509365",{"EN":2112},"\u003Cjats:title>Abstract:\u003C\u002Fjats:title>\u003Cjats:p>Advances in opto-electronics are often led by discovery and development of\n\t\t\t\t\tmaterials featuring unique properties. Recently, the material class of\n\t\t\t\t\ttransparent conductive oxides (TCO) has attracted attention for active photonic\n\t\t\t\t\tdevices on-chip. In particular, indium tin oxide (ITO) is found to have\n\t\t\t\t\trefractive index changes on the order of unity. This property makes it possible\n\t\t\t\t\tto achieve electrooptic modulation of sub-wavelength device scales, when thin\n\t\t\t\t\tITO films are interfaced with optical light confinement techniques such as found\n\t\t\t\t\tin plasmonics; optical modes are compressed to nanometer scale to create strong\n\t\t\t\t\tlight-matter interactions. Here we review efforts towards utilizing this novel\n\t\t\t\t\tmaterial for high performance and ultra-compact modulation. While high\n\t\t\t\t\tperformance metrics are achieved experimentally, there are open questions\n\t\t\t\t\tpertaining to the permittivity modulation mechanism of ITO. Finally, we review a\n\t\t\t\t\tvariety of optical and electrical properties of ITO for different processing\n\t\t\t\t\tconditions, and show that ITO-based plasmonic electro-optic modulators have the\n\t\t\t\t\tpotential to significantly outperform diffractionlimited devices.\u003C\u002Fjats:p>",{"EN":2114},"Indium-Tin-Oxide for High-performance Electro-optic Modulation",{"VOID":2116},"10.1515\u002Fnanoph-2015-0006",[186],"https:\u002F\u002Fwww.degruyter.com\u002Fdocument\u002Fdoi\u002F10.1515\u002Fnanoph-2015-0006\u002Fhtml",[2120,2141,2169,2184,2201],{"id":2121,"sortIndex":1244,"researcher":23,"roles":2122,"affiliations":2123,"properties":2134},"566158ef-6e75-4df9-86bf-a58f57b9b530",[],[2124],{"id":2125,"sortIndex":24,"affiliation":2126,"properties":23},"7abc3310-dc62-421f-9cb2-3d174fb17179",{"id":2127,"createTime":2128,"updateTime":2128,"relativeEntities":2129,"slug":2130,"properties":2131,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},"f68bc2f7-0d15-481e-88e3-5d1b017a7659","2025-01-30T16:38:08.518+00:00",[],"1Department-of-Electrical-and-Computer-Engineering-School-of-Engineering-and-Applied-Science-George-Washington-University-Washington-DC-20052-USA",{"title":2132},{"EN":2133},"1Department of Electrical and Computer Engineering, School of Engineering and Applied Science, George Washington University, Washington, DC 20052, USA",{"openalex":2135,"orcid":2137,"title":2139},{"VOID":2136},"A5053069725",{"VOID":2138},"https:\u002F\u002Forcid.org\u002F0000-0002-5152-4766",{"EN":2140},"Volker J. Sorger",{"id":2142,"sortIndex":140,"researcher":23,"roles":2143,"affiliations":2144,"properties":2162},"758a80a8-96e5-4ac2-9cdc-be965fad7d39",[],[2145,2151],{"id":2146,"sortIndex":24,"affiliation":2147,"properties":23},"3f5a80f2-d147-4862-9289-87c21f37b741",{"id":2127,"createTime":2128,"updateTime":2128,"relativeEntities":2148,"slug":2130,"properties":2149,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},[],{"title":2150},{"EN":2133},{"id":2152,"sortIndex":212,"affiliation":2153,"properties":23},"8b57eb7a-ed04-47f3-b782-24409363b787",{"id":2154,"createTime":2155,"updateTime":2156,"relativeEntities":2157,"slug":2158,"properties":2159,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},"0ba41e6e-480c-4243-bfef-a6909aafb444","2025-01-30T16:38:08.548+00:00","2025-06-12T00:30:14.764+00:00",[],"2The-Key-Laboratory-of-Optoelectronics-Technology-Ministry-of-Education-Beijing-University-of-Technology-Beijing-100124-P-R-China",{"title":2160},{"EN":2161},"2The Key Laboratory of Optoelectronics Technology, Ministry of Education, Beijing University of Technology, Beijing 100124, P.R. 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crystal light valves, Electron Lett, 6, 837, 10.1049\u002Fel:19700578",{"doi":2470},"10.1049\u002Fel:19700578",{"id":23,"text":2472,"url":23,"identifiers":2473},"Katayama, 1991, Tft - lcd technology, Thin Solid Films, 341",{},{"id":23,"text":2475,"url":23,"identifiers":2476},"Sorger, 2011, Spotlight on plasmon lasers, Sci, 333",{},{"id":23,"text":2478,"url":23,"identifiers":2479},"Cui, 2010, Thermo - optically tunable silicon photonic crystal light modulator, Opt Lett, 35, 3613, 10.1364\u002FOL.35.003613",{"doi":2480},"10.1364\u002FOL.35.003613",{"id":23,"text":2482,"url":23,"identifiers":2483},"Kurdesau, 2006, Da Comparative study of ITO layers deposited by DC and RF magnetron sputtering at room temperature, Cryst Solids, 352",{},{"id":23,"text":2485,"url":23,"identifiers":2486},"Hamberg, 1986, - doped In films : basic optical properties and applications to energy - eflcient windows, Appl Phys, 60, 123, 10.1063\u002F1.337534",{"doi":2487},"10.1063\u002F1.337534",{"id":2489,"createTime":2490,"updateTime":2490,"relativeEntities":2491,"slug":2492,"properties":2493,"entityType":181,"verifyStatus":182,"verifyTime":2490,"verifyNote":184,"syncStatus":22,"languages":2505,"translateLanguages":23,"viewCount":24,"primaryUrl":2506,"fullTextUrl":23,"authors":2507,"publicationType":262,"publisherRelationship":2611,"citationCount":2648,"citationInfo":2649,"publishDate":2652,"publishYear":2653,"citationAnalyzeStatus":22,"lastCitationAnalyze":23,"indexDatabases":23,"openAccess":23,"references":2654,"isForceReanalyzing":1129},"055a0be2-97b9-41f6-94cf-6def35a73b97","2024-11-28T15:35:41.925+00:00",[],"Observing-and-controlling-a-Tamm-plasmon-at-the-interface-with-a-metasurface",{"mag":2494,"keywords":2496,"openalex":2497,"abstract":2499,"title":2501,"doi":2503},{"VOID":2495},"3103213887",{},{"VOID":2498},"W3103213887",{"EN":2500},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\n               \u003Cjats:p>We demonstrate experimentally that Tamm plasmons in the near infrared can be supported by a dielectric mirror interfaced with a metasurface, a discontinuous thin metal film periodically patterned on the sub-wavelength scale. More crucially, not only do Tamm plasmons survive the nanopatterning of the metal film but they also become sensitive to external perturbations as a result. In particular, by depositing a nematic liquid crystal on the outer side of the metasurface, we were able to red shift the spectral position of Tamm plasmon by 35 nm, while electrical switching of the liquid crystal enabled us to tune the wavelength of this notoriously inert excitation within a 10-nm range.\u003C\u002Fjats:p>",{"EN":2502},"Observing and controlling a Tamm plasmon at the interface with a metasurface",{"VOID":2504},"10.1515\u002Fnanoph-2019-0514",[186],"https:\u002F\u002Fwww.degruyter.com\u002Fdocument\u002Fdoi\u002F10.1515\u002Fnanoph-2019-0514\u002Fhtml",[2508,2530,2551,2572,2594],{"id":2509,"sortIndex":129,"researcher":23,"roles":2510,"affiliations":2511,"properties":2523},"c242b874-9414-4854-bc94-9b96bc6a4953",[],[2512],{"id":2513,"sortIndex":24,"affiliation":2514,"properties":23},"2f8ef4bd-b9f1-4501-a6b1-2c575aff5c6d",{"id":2515,"createTime":2516,"updateTime":2517,"relativeEntities":2518,"slug":2519,"properties":2520,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},"a830709c-7357-4ee9-a7b3-e7be038bf47e","2024-01-20T10:25:55.879+00:00","2024-11-28T15:35:41.971+00:00",[],"Air-Force-Research-Laboratory-Materials-and-Manufacturing-Directorate-Wright-Patterson-Air-Force-Base-Dayton-OH-45433-USA",{"title":2521},{"VI":2522},"Air Force Research Laboratory, Materials and Manufacturing Directorate, Wright-Patterson Air Force Base, Dayton, OH 45433, USA",{"openalex":2524,"orcid":2526,"title":2528},{"VOID":2525},"A5062659113",{"VOID":2527},"https:\u002F\u002Forcid.org\u002F0000-0002-2062-107X",{"EN":2529},"D. 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Tamm plasmon-polaritons: possible electromagnetic states at the interface of a metal and a dielectric Bragg mirror. Phys Rev B 2007;76:165415.",{"doi":2658},"10.1103\u002FPhysRevB.76.165415",{"id":23,"text":2660,"url":23,"identifiers":2661},"Sasin ME, Seisyan RP, Kalitteevski MA, et al. Tamm plasmon polaritons: slow and spatially compact light. Appl Phys Lett 2008;92:251112.",{"doi":2662},"10.1063\u002F1.2952486",{"id":23,"text":2664,"url":23,"identifiers":2665},"Chestnov IYu, Sedov ES, Kutrovskaya SV, Kucherik AO, Arakelian SM, Kavokin AV. One-dimensional Tamm plasmons: spatial confinement, propagation, and polarization properties. Phys Rev B 2017;96:245309.",{"doi":2666},"10.1103\u002FPhysRevB.96.245309",{"id":23,"text":2668,"url":23,"identifiers":2669},"Zhang WL, Yu SF. Bistable switching using an optical Tamm cavity with a Kerr medium. Opt Commun 2010;283:2622–6.",{"doi":2670},"10.1016\u002Fj.optcom.2010.02.035",{"id":23,"text":2672,"url":23,"identifiers":2673},"Symonds C, Lemaitre A, Senellart P, et al. Lasing in a hybrid GaAs\u002Fsilver Tamm structure. Appl Phys Lett 2012;100:121122.",{"doi":2674},"10.1063\u002F1.3697641",{"id":23,"text":2676,"url":23,"identifiers":2677},"Symonds C, Lheureux G, Hugonin JP, et al. Confined Tamm plasmon lasers. Nano Lett 2013;13:3179–84.",{"doi":2678},"10.1021\u002Fnl401210b",{"id":23,"text":2680,"url":23,"identifiers":2681},"Zhang WL, Wang F, Rao YJ, Jiang Y. Novel sensing concept based on optical Tamm plasmon. Opt Express 2014;22: 14524–9.",{"doi":2682},"10.1364\u002FOE.22.014524",{"id":23,"text":2684,"url":23,"identifiers":2685},"Auguie B, Fuertes MC, Angelome PC, et al. Tamm plasmon resonance in mesoporous multilayers: toward a sensing application. ACS Photon 2014;1:775–80.",{"doi":2686},"10.1021\u002Fph5001549",{"id":23,"text":2688,"url":23,"identifiers":2689},"Kumar S, Maji PS, Das R. Tamm-plasmon resonance based temperature sensor in a Ta2O5\u002FSiO2 based distributed Bragg reflector. Sens Actuat A 2017;260:10–5.",{"doi":2690},"10.1016\u002Fj.sna.2017.03.038",{"id":23,"text":2692,"url":23,"identifiers":2693},"Yang ZY, Ishii S, Yokoyama T, et al. Narrowband wavelength selective thermal emitters by confined Tamm plasmon polaritons. ACS Photon 2017;4:2212–9.",{"doi":2694},"10.1021\u002Facsphotonics.7b00408",{"id":23,"text":2696,"url":23,"identifiers":2697},"Huang SG, Chen K-P, Jeng S-C. Phase sensitive sensor on Tamm plasmon devices. Opt Mater Express 2017;7:1267–73.",{"doi":2698},"10.1364\u002FOME.7.001267",{"id":23,"text":2700,"url":23,"identifiers":2701},"Jiménez-Solano A, Galisteo-López JF, Míguez H. Flexible and adaptable light-emitting coatings for arbitrary metal surfaces based on optical Tamm mode coupling. Adv Opt Mater 2018;6:1700560.",{"doi":2702},"10.1002\u002Fadom.201700560",{"id":23,"text":2704,"url":23,"identifiers":2705},"Da HX, Huang ZQ, Li ZY. Electrically controlled optical Tamm states in magnetophotonic crystal based on nematic liquid crystals. Opt Lett 2009;34:1693–5.",{"doi":2706},"10.1364\u002FOL.34.001693",{"id":23,"text":2708,"url":23,"identifiers":2709},"Luo J, Xu P, Gao L. Controllable switching behavior of optical Tamm state based on nematic liquid crystal. Solid State Commun 2011;151:993–5.",{"doi":2710},"10.1016\u002Fj.ssc.2011.04.031",{"id":23,"text":2712,"url":23,"identifiers":2713},"Pankin PS, Vetrov SYA, Timofeev IV. Tunable hybrid Tamm-microcavity states. J Opt Soc Am B 2018;34:2633–9.",{"doi":2714},"10.1364\u002FJOSAB.34.002633",{"id":23,"text":2716,"url":23,"identifiers":2717},"Cheng HC, Kuo CY, Hung YJ, Chen KP, Jeng SC. Liquid-crystal active Tamm-plasmon devices. Phys Rev Appl 2018;9: 064034.",{"doi":2718},"10.1103\u002FPhysRevApplied.9.064034",{"id":23,"text":2720,"url":23,"identifiers":2721},"Gazzano O, Michaelis de Vasconcellos S, Gauthron K, et al. Evidence for confined Tamm plasmon modes under metallic microdisks and application to the control of spontaneous optical emission. Phys Rev Lett 2011;107:247402.",{"doi":2722},"10.1103\u002FPhysRevLett.107.247402",{"id":23,"text":2724,"url":23,"identifiers":2725},"Aams M, Cemlyn B, Henning I, Parker M, Harbord E, Oulton R. Model for confined Tamm plasmon devices. J Opt Soc Am B 2019;36:125–30.",{"doi":2726},"10.1364\u002FJOSAB.36.000125",{"id":23,"text":2728,"url":23,"identifiers":2729},"Gubaydullin AR, Symonds C, Benoit J-M, et al. Tamm plasmon sub-wavelength structuration for loss reduction and resonance tuning. Appl Phys Lett 2017;111:261103.",{"doi":2730},"10.1063\u002F1.4991025",{"id":23,"text":2732,"url":23,"identifiers":2733},"Juškevičius K, Audronis M, Subačius A, et al. Fabrication of Nb2O5\u002FSiO2 mixed oxides by reactive magnetron co-sputtering. Thin Solid Film 2015;589:95–104.",{"doi":2734},"10.1016\u002Fj.tsf.2015.04.075",{"id":23,"text":2736,"url":23,"identifiers":2737},"Gao L, Lemarchand F, Lequime M. Exploitation of multiple incidences spectrometric measurements for thin film reverse engineering. Opt Express 2012;20:15734–51.",{"doi":2738},"10.1364\u002FOE.20.015734",{"id":23,"text":2740,"url":23,"identifiers":2741},"Munk BA. Frequency selective surfaces: theory and design. New York: Wiley, 2000.",{"doi":2742},"10.1002\u002F0471723770",{"id":23,"text":2744,"url":23,"identifiers":2745},"Lee KJ, Wu JW, Kim K. Enhanced nonlinear optical effects due to the excitation of optical Tamm plasmon polaritons in one-dimensional photonic crystal structures. Opt Express 2013;21:28817–23.",{"doi":2746},"10.1364\u002FOE.21.028817",{"id":23,"text":2748,"url":23,"identifiers":2749},"Auguie B, Bruchhausen A, Fainstein A. Critical coupling to Tamm plasmons. J Opt 2015;17:035003.",{"doi":2750},"10.1088\u002F2040-8978\u002F17\u002F3\u002F035003",{"id":23,"text":2752,"url":23,"identifiers":2753},"Chang C-Y, Chen Y-H, Tsai Y-L, Kuo H-C, Chen K-P. Tunability and optimization of coupling efficiency in Tamm plasmon modes. IEEE J Select Topic Quant Electron 2015;21: 4600206.",{"doi":2754},"10.1109\u002FJSTQE.2014.2375151",{"id":23,"text":2756,"url":23,"identifiers":2757},"Kumari A, Kumar S, Shukla MK, et al. Coupling to Tamm-plasmon-polaritons: dependence on structural parameters. J Phys D Appl Phys 2018;51:255103.",{"doi":2758},"10.1088\u002F1361-6463\u002Faac474",{"id":23,"text":2760,"url":23,"identifiers":2761},"Bohren CF, Huffman DR. Absorption and scattering of light by small particles, 2nd ed. New York: Wiley-Interscience, 1998.",{"doi":2762},"10.1002\u002F9783527618156",{"id":23,"text":2764,"url":23,"identifiers":2765},"Rakić AD, Djurišic AB, Elazar JM, Majewski ML. Optical properties of metallic films for vertical-cavity optoelectronic devices. Appl Opt 1998;37:5271–83.",{"doi":2766},"10.1364\u002FAO.37.005271",{"id":23,"text":2768,"url":23,"identifiers":2769},"Tomlin SG. Optical reflection and transmission formulae for thin films. J Phys D Appl Phys 1968;1:1667.",{"doi":2770},"10.1088\u002F0022-3727\u002F1\u002F12\u002F312",{"id":23,"text":2772,"url":23,"identifiers":2773},"Badugu R, Descrovi E, Lakowicz JR. Radiative decay engineering: Tamm state-coupled emission using a hybrid plasmonic photonic structure. Anal Biochem 2014;445:1–13.",{"doi":2774},"10.1016\u002Fj.ab.2013.10.009",{"id":23,"text":2776,"url":23,"identifiers":2777},"Kumar S, Shukla MK, Maji PS, Das R. Self-referenced refractive index sensing with hybrid-Tamm-plasmon-polariton modes in sub-wavelength analyte layers. J Phys D Appl Phys 2017;50:375106.",{"doi":2778},"10.1088\u002F1361-6463\u002Faa7fd7",{"id":23,"text":2780,"url":23,"identifiers":2781},"Li J, Wu ShT, Brugioni S, Meucci R, Faetti S. Infrared refractive indices of liquid crystals. J Appl Phys 2005;97:073501.",{"doi":2782},"10.1063\u002F1.1877815",{"id":23,"text":2784,"url":23,"identifiers":2785},"Hinov HP. Penetration depth of surface forces into nematic layers. Mol Cryst Liq Cryst 1981;74:39–53.",{"doi":2786},"10.1080\u002F00268948108073693",{"id":23,"text":2788,"url":23,"identifiers":2789},"Arakawa Y, Kang S, Tsuji H, Watanabe J, Konishi GI. The design of liquid crystalline bisolane-based materials with extremely high birefringence. RSC Adv 2016;6:92845–51.",{"doi":2790},"10.1039\u002FC6RA14093A",{"id":2792,"createTime":2793,"updateTime":2793,"relativeEntities":2794,"slug":2795,"properties":2796,"entityType":181,"verifyStatus":182,"verifyTime":2808,"verifyNote":184,"syncStatus":22,"languages":2809,"translateLanguages":23,"viewCount":24,"primaryUrl":2810,"fullTextUrl":23,"authors":2811,"publicationType":262,"publisherRelationship":2913,"citationCount":2949,"citationInfo":2950,"publishDate":2955,"publishYear":2956,"citationAnalyzeStatus":22,"lastCitationAnalyze":23,"indexDatabases":23,"openAccess":23,"references":2957,"isForceReanalyzing":1129},"b2f02220-3171-4c3c-b61a-74243362d403","2024-10-04T14:41:02.392+00:00",[],"Graphene-plasmonics-physics-and-potential-applications",{"mag":2797,"keywords":2799,"openalex":2800,"abstract":2802,"title":2804,"doi":2806},{"VOID":2798},"2963039761",{},{"VOID":2801},"W2963039761",{"EN":2803},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\u003Cjats:p>Plasmon in graphene possesses many unique properties. It originates from the collective motion of massless Dirac fermions, and the carrier density dependence is distinctively different from conventional plasmons. In addition, graphene plasmon is highly tunable and shows strong energy confinement capability. Most intriguingly, as an atom-thin layer, graphene and its plasmon are very sensitive to the immediate environment. Graphene plasmons strongly couple to polar phonons of the substrate, molecular vibrations of the adsorbates, and lattice vibrations of other atomically thin layers. In this review, we present the most important advances in graphene plasmonics field. The topics include terahertz plasmons, mid-infrared plasmons, plasmon-phonon interactions, and potential applications. Graphene plasmonics opens an avenue for reconfigurable metamaterials and metasurfaces; it is an exciting and promising new subject in the nanophotonics and plasmonics research field.\u003C\u002Fjats:p>",{"EN":2805},"Graphene plasmonics: physics and potential 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731",{},{"id":23,"text":709,"url":23,"identifiers":3259},{},{"id":23,"text":3261,"url":23,"identifiers":3262},"2009, Ultra-sensitive vibrational spectroscopy of protein monolayers with plasmonic nanoantenna arrays, Proc Natl Acad Sci USA, 106, 19227, 10.1073\u002Fpnas.0907459106",{"doi":3263},"10.1073\u002Fpnas.0907459106",{"id":3265,"createTime":3266,"updateTime":3266,"relativeEntities":3267,"slug":3268,"properties":3269,"entityType":181,"verifyStatus":182,"verifyTime":3281,"verifyNote":184,"syncStatus":22,"languages":3282,"translateLanguages":23,"viewCount":24,"primaryUrl":3283,"fullTextUrl":23,"authors":3284,"publicationType":262,"publisherRelationship":3373,"citationCount":3410,"citationInfo":3411,"publishDate":3416,"publishYear":3417,"citationAnalyzeStatus":22,"lastCitationAnalyze":23,"indexDatabases":23,"openAccess":23,"references":3418,"isForceReanalyzing":1129},"1ce7b7c3-fd52-44ad-a682-4b0c8d3f28f4","2024-09-22T12:52:55.722+00:00",[],"A-review-of-2D-and-3D-plasmonic-nanostructure-array-patterns-fabrication-light-management-and-sensing-applications",{"mag":3270,"keywords":3272,"openalex":3273,"abstract":3275,"title":3277,"doi":3279},{"VOID":3271},"2978166361",{},{"VOID":3274},"W2978166361",{"EN":3276},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\n               \u003Cjats:p>This review article discusses progress in surface plasmon resonance (SPR) of two-dimensional (2D) and three-dimensional (3D) chip-based nanostructure array patterns. Recent advancements in fabrication techniques for nano-arrays have endowed researchers with tools to explore a material’s plasmonic optical properties. In this review, fabrication techniques including electron-beam lithography, focused-ion lithography, dip-pen lithography, laser interference lithography, nanosphere lithography, nanoimprint lithography, and anodic aluminum oxide (AAO) template-based lithography are introduced and discussed. Nano-arrays have gained increased attention because of their optical property dependency (light-matter interactions) on size, shape, and periodicity. In particular, nano-array architectures can be tailored to produce and tune plasmonic modes such as localized surface plasmon resonance (LSPR), surface plasmon polariton (SPP), extraordinary transmission, surface lattice resonance (SLR), Fano resonance, plasmonic whispering-gallery modes (WGMs), and plasmonic gap mode. Thus, light management (absorption, scattering, transmission, and guided wave propagation), as well as electromagnetic (EM) field enhancement, can be controlled by rational design and fabrication of plasmonic nano-arrays. Because of their optical properties, these plasmonic modes can be utilized for designing plasmonic sensors and surface-enhanced Raman scattering (SERS) sensors.\u003C\u002Fjats:p>",{"EN":3278},"A review of 2D and 3D plasmonic nanostructure array patterns: fabrication, light management and sensing applications",{"VOID":3280},"10.1515\u002Fnanoph-2019-0158","2024-09-22T12:52:55.721+00:00",[186],"https:\u002F\u002Fwww.degruyter.com\u002Fdocument\u002Fdoi\u002F10.1515\u002Fnanoph-2019-0158\u002Fhtml",[3285,3328,3356],{"id":3286,"sortIndex":140,"researcher":23,"roles":3287,"affiliations":3288,"properties":3321},"b9bf2b7c-6f1e-4e7f-b40c-ecf0ead9ee1c",[],[3289,3300,3310],{"id":3290,"sortIndex":212,"affiliation":3291,"properties":23},"bef238f3-f910-4ce0-a93a-70cc6a37c8fa",{"id":3292,"createTime":3293,"updateTime":3294,"relativeEntities":3295,"slug":3296,"properties":3297,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},"7da43b12-4867-4ded-95ca-49820770eac7","2023-12-07T20:21:30.625+00:00","2024-10-02T02:43:52.825+00:00",[],"Department-of-Mechanical-and-Aerospace-Engineering-West-Virginia-University-Morgantown-WV-26506-6106-USA",{"title":3298},{"VI":3299},"Department of Mechanical and Aerospace Engineering, West Virginia University, Morgantown, WV 26506-6106, USA",{"id":3301,"sortIndex":140,"affiliation":3302,"properties":23},"080b9445-11d3-4896-bf3e-a9cd763921bf",{"id":3303,"createTime":3304,"updateTime":3304,"relativeEntities":3305,"slug":3306,"properties":3307,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},"6cb0cb7c-94f4-4ab4-bf14-8d140bae4b48","2024-09-22T12:52:55.767+00:00",[],"Department-of-Pharmaceutical-Science-West-Virginia-University-Morgantown-WV-26506-9530-USA-Phone-1-304-293-3326",{"title":3308},{"EN":3309},"Department of Pharmaceutical Science , West Virginia University , Morgantown, WV 26506-9530 , USA , Phone: +1-304-293-3326",{"id":3311,"sortIndex":24,"affiliation":3312,"properties":23},"c627bf08-8191-47ee-85ec-8f4a1f292888",{"id":3313,"createTime":3314,"updateTime":3315,"relativeEntities":3316,"slug":3317,"properties":3318,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},"1b288e13-6c3e-4418-83d6-f7e10b8e3e07","2024-01-08T16:07:12.008+00:00","2024-09-22T12:52:55.765+00:00",[],"C-Eugene-Bennett-Department-of-Chemistry-West-Virginia-University-Morgantown-WV-26506-6045-USA",{"title":3319},{"VI":3320},"C. Eugene Bennett Department of Chemistry, West Virginia University, Morgantown, WV 26506-6045, USA",{"openalex":3322,"orcid":3324,"title":3326},{"VOID":3323},"A5008828063",{"VOID":3325},"https:\u002F\u002Forcid.org\u002F0000-0002-8888-2444",{"EN":3327},"Nianqiang Wu",{"id":3329,"sortIndex":24,"researcher":23,"roles":3330,"affiliations":3331,"properties":3349},"84031ff2-b90e-4278-90a0-101bcf027a45",[],[3332,3338],{"id":3333,"sortIndex":24,"affiliation":3334,"properties":23},"60e24bc0-1196-498c-b822-a06c35adaa80",{"id":3292,"createTime":3293,"updateTime":3294,"relativeEntities":3335,"slug":3296,"properties":3336,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},[],{"title":3337},{"VI":3299},{"id":3339,"sortIndex":212,"affiliation":3340,"properties":23},"e29ab17f-eac9-47ff-88f3-a51235ec994a",{"id":3341,"createTime":3342,"updateTime":3343,"relativeEntities":3344,"slug":3345,"properties":3346,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},"2130747d-2c88-4304-ab45-9e1c98c4a1ba","2024-04-12T01:57:08.163+00:00","2024-09-22T12:52:55.747+00:00",[],"Lane-Department-of-Computer-Science-and-Electrical-Engineering-West-Virginia-University-Morgantown-WV-26506-USA-",{"title":3347},{"EN":3348},"Lane 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Gap-plasmon enhanced water splitting with ultrathin hematite films: the role of plasmonic-based light trapping and hot electrons. Faraday Discuss 2019;214:283–95.",{"doi":4203},"10.1039\u002FC8FD00148K",{"id":23,"text":4205,"url":23,"identifiers":4206},"Fofang NT, Grady NK, Fan Z, Govorov AO, Halas NJ. Plexciton Dynamics: exciton plasmon coupling in a J-aggregate Au nanoshell complex provides a mechanism for nonlinearity. Nano Lett 2011;11:1556–60.10.1021\u002Fnl104352j",{"doi":4207},"10.1021\u002Fnl104352j",{"id":23,"text":4209,"url":23,"identifiers":4210},"Sivashanmugana K, Huang WL, Lina CH, et al. Bimetallic nanoplasmonic gap-mode SERS substrate for lung normal and cancer-derived exosomes detection. J Taiwan Inst Chem Eng 2017;80:149–55.10.1016\u002Fj.jtice.2017.09.026",{"doi":4211},"10.1016\u002Fj.jtice.2017.09.026",{"id":23,"text":4213,"url":23,"identifiers":4214},"Kubo W, Fujikawa S. Au double nanopillars with nanogap for plasmonic sensor. Nano Lett 2011;11:8–15.10.1021\u002Fnl100787b21114297",{"doi":4215},"10.1021\u002Fnl100787b",{"id":23,"text":4217,"url":23,"identifiers":4218},"Shao F, Lu Z, Liu C, et al. Hierarchical nanogaps within bioscaffold arrays as a high- performance SERS substrate for animal virus biosensing. ACS Appl Mater Interfaces 2014;6:6281–9.2435953710.1021\u002Fam4045212",{"doi":4219},"10.1021\u002Fam4045212",{"id":23,"text":4221,"url":23,"identifiers":4222},"Wu N. Plasmonic metal-semiconductor photocatalysts and photoelectrochemical cells: a review. Nanoscale 2018;10:2679–96.10.1039\u002FC7NR08487K",{"doi":4223},"10.1039\u002FC7NR08487K",{"id":4225,"createTime":4226,"updateTime":4226,"relativeEntities":4227,"slug":4228,"properties":4229,"entityType":181,"verifyStatus":182,"verifyTime":4241,"verifyNote":184,"syncStatus":22,"languages":4242,"translateLanguages":23,"viewCount":24,"primaryUrl":4243,"fullTextUrl":23,"authors":4244,"publicationType":262,"publisherRelationship":4415,"citationCount":4451,"citationInfo":4452,"publishDate":4454,"publishYear":312,"citationAnalyzeStatus":22,"lastCitationAnalyze":23,"indexDatabases":23,"openAccess":23,"references":4455,"isForceReanalyzing":1129},"ece7db8b-33ae-45ef-9539-59ef9eb0f995","2024-09-04T11:49:13.560+00:00",[],"Stretchable-and-self-healable-organometal-halide-perovskite-nanocrystal-embedded-polymer-gels-with-enhanced-luminescence-stability",{"mag":4230,"keywords":4232,"openalex":4233,"abstract":4235,"title":4237,"doi":4239},{"VOID":4231},"2899295413",{},{"VOID":4234},"W2899295413",{"EN":4236},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\n               \u003Cjats:p>Stretchable and self-healing polymer gels with luminescent property are very promising materials for next generation soft optical devices. This work presents the preparation of self-healing and luminescent polymer gels by simply blending organometal halide perovskite nanocrystals (OHP NCs) with poly(dimethylsiloxane)-urea copolymer (PDMS-urea). On the one hand, the obtained luminescent gels are not only flexible, stretchable and relatively transparent, they also exhibit excellent self-healing capability due to the reversible hydrogen bonding network in the PDMS-urea copolymer. On the other hand, the embedding of OHP NCs (MAPbBr\u003Cjats:sub>3\u003C\u002Fjats:sub> and MAPbI\u003Cjats:sub>3\u003C\u002Fjats:sub> NCs) inside the hydrophobic PDMS-urea gel greatly improved the photoluminescence stability of OHP NCs against water. Their applications as phosphors for LEDs have been demonstrated. Both the MAPbBr\u003Cjats:sub>3\u003C\u002Fjats:sub>\u002FPDMS-urea gel and MAPbI\u003Cjats:sub>3\u003C\u002Fjats:sub>\u002FPDMS-urea gel can fully convert the blue emission of GaN chip to green and red emissions, respectively. These gels can be used as photoluminescent materials in flexible optical devices with good self-healing capability.\u003C\u002Fjats:p>",{"EN":4238},"Stretchable and self-healable organometal halide perovskite nanocrystal-embedded polymer gels with enhanced luminescence 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Nat Phys 2008;4:532–5.",{"doi":3231},{"id":23,"text":5588,"url":23,"identifiers":5589},"Akahane Y, Asano T, Song BS, Noda S. High-Q photonic nanocavity in a two-dimensional photonic crystal. Nature 2003;425:944–7.",{"doi":5590},"10.1038\u002Fnature02063",{"id":23,"text":5592,"url":23,"identifiers":5593},"Gao Y, Shiue RJ, Gan X, et al. High-speed electro-optic modulator integrated with graphene-boron nitride heterostructure and photonic crystal nanocavity. Nano Lett 2014;15:2001–5.",{"doi":5594},"10.1021\u002Fnl504860z",{"id":5596,"createTime":5597,"updateTime":5597,"relativeEntities":5598,"slug":5599,"properties":5600,"entityType":181,"verifyStatus":182,"verifyTime":5597,"verifyNote":184,"syncStatus":22,"languages":5612,"translateLanguages":23,"viewCount":24,"primaryUrl":5613,"fullTextUrl":23,"authors":5614,"publicationType":262,"publisherRelationship":5731,"citationCount":1799,"citationInfo":5768,"publishDate":5770,"publishYear":1327,"citationAnalyzeStatus":22,"lastCitationAnalyze":23,"indexDatabases":23,"openAccess":23,"references":5771,"isForceReanalyzing":1129},"bac06ddd-239c-4ee3-bcda-3b22cf3991b1","2024-09-19T09:00:30.769+00:00",[],"All-optical-modulation-based-on-MoS-sub-2-sub-Plasmonic-nanoslit-hybrid-structures",{"mag":5601,"keywords":5603,"openalex":5604,"abstract":5606,"title":5608,"doi":5610},{"VOID":5602},"3205184204",{},{"VOID":5605},"W3205184204",{"EN":5607},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\n               \u003Cjats:p>Two-dimensional (2D) materials with excellent optical properties and complementary metal-oxide-semiconductor (CMOS) compatibility have promising application prospects for developing highly efficient, small-scale all-optical modulators. However, due to the weak nonlinear light-material interaction, high power density and large contact area are usually required, resulting in low light modulation efficiency. In addition, the use of such large-band-gap materials limits the modulation wavelength. In this study, we propose an all-optical modulator integrated Si waveguide and single-layer MoS\u003Cjats:sub>2\u003C\u002Fjats:sub> with a plasmonic nanoslit, wherein modulation and signal light beams are converted into plasmon through nanoslit confinement and together are strongly coupled to 2D MoS\u003Cjats:sub>2\u003C\u002Fjats:sub>. This enables MoS\u003Cjats:sub>2\u003C\u002Fjats:sub> to absorb signal light with photon energies less than the bandgap, thereby achieving high-efficiency amplitude modulation at 1550 nm. As a result, the modulation efficiency of the device is up to 0.41 dB μm\u003Cjats:sup>−1\u003C\u002Fjats:sup>, and the effective size is only 9.7 µm. Compared with other 2D material-based all-optical modulators, this fabricated device exhibits excellent light modulation efficiency with a micron-level size, which is potential in small-scale optical modulators and chip-integration applications. Moreover, the MoS\u003Cjats:sub>2\u003C\u002Fjats:sub>-plasmonic nanoslit modulator also provides an opportunity for TMDs in the application of infrared optoelectronics.\u003C\u002Fjats:p>",{"EN":5609},"All-optical modulation based on MoS\u003Csub>2\u003C\u002Fsub>-Plasmonic nanoslit hybrid structures",{"VOID":5611},"10.1515\u002Fnanoph-2021-0279",[186],"https:\u002F\u002Fwww.degruyter.com\u002Fdocument\u002Fdoi\u002F10.1515\u002Fnanoph-2021-0279\u002Fhtml",[5615,5637,5658,5680,5697,5714],{"id":5616,"sortIndex":140,"researcher":23,"roles":5617,"affiliations":5618,"properties":5630},"e8038d82-79b0-4e77-b926-b476ed11f339",[],[5619],{"id":5620,"sortIndex":24,"affiliation":5621,"properties":23},"8e859afd-7b31-4b50-8031-033578ba3323",{"id":5622,"createTime":5623,"updateTime":5624,"relativeEntities":5625,"slug":5626,"properties":5627,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},"a9007874-9320-4a6e-b9a8-465d0db5068c","2024-09-19T09:00:30.811+00:00","2024-09-23T06:44:01.066+00:00",[],"Chongqing-Key-Laboratory-of-Multi-scale-Manufacturing-Technology-Chongqing-Institute-of-Green-and-Intelligent-Technology-Chinese-Academy-of-Sciences-Chongqing-400714-People-s-Republic-of-China",{"title":5628},{"EN":5629},"Chongqing Key Laboratory of Multi-scale Manufacturing Technology, Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences , Chongqing , 400714 , People’s Republic of China",{"openalex":5631,"orcid":5633,"title":5635},{"VOID":5632},"A5001572397",{"VOID":5634},"https:\u002F\u002Forcid.org\u002F0000-0003-4469-6639",{"EN":5636},"Xingzhan Wei",{"id":5638,"sortIndex":129,"researcher":23,"roles":5639,"affiliations":5640,"properties":5651},"a6324281-3823-4c51-a9f5-8581f2129f8f",[],[5641],{"id":5642,"sortIndex":24,"affiliation":5643,"properties":23},"cf74e21a-fc54-4942-94c8-8296521750d4",{"id":5644,"createTime":5645,"updateTime":5645,"relativeEntities":5646,"slug":5647,"properties":5648,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},"662560ba-ca29-4294-bd2d-474546a902da","2024-09-19T09:00:30.839+00:00",[],"Guangdong-Hongxin-Technology-Co-Ltd-Dongguan-523690-People-s-Republic-of-China",{"title":5649},{"EN":5650},"Guangdong Hongxin Technology Co. Ltd. , Dongguan , 523690 , People’s Republic of China",{"openalex":5652,"orcid":5654,"title":5656},{"VOID":5653},"A5102731136",{"VOID":5655},"https:\u002F\u002Forcid.org\u002F0000-0003-1937-7169",{"EN":5657},"Mao Hu",{"id":5659,"sortIndex":1244,"researcher":23,"roles":5660,"affiliations":5661,"properties":5673},"32f8777b-899c-49fb-addb-f103afb7d0c6",[],[5662],{"id":5663,"sortIndex":24,"affiliation":5664,"properties":23},"a924bc70-d455-467c-a3c9-2bd6fe91ae41",{"id":5665,"createTime":5666,"updateTime":5667,"relativeEntities":5668,"slug":5669,"properties":5670,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},"5682df88-bd7e-4b61-8660-108053b08e88","2023-12-06T18:01:32.683+00:00","2024-09-19T09:00:30.794+00:00",[],"Institute-of-Microscale-Optoelectronics-Shenzhen-University-Shenzhen-518060-People-s-Republic-of-China",{"title":5671},{"VI":5672},"Institute of Microscale Optoelectronics, Shenzhen University, Shenzhen 518060, People’s Republic of China",{"openalex":5674,"orcid":5676,"title":5678},{"VOID":5675},"A5100434298",{"VOID":5677},"https:\u002F\u002Forcid.org\u002F0000-0003-2351-5579",{"EN":5679},"Yupeng Zhang",{"id":5681,"sortIndex":212,"researcher":23,"roles":5682,"affiliations":5683,"properties":5690},"a73e1225-0491-4d8e-9ad3-11fac28b9680",[],[5684],{"id":5685,"sortIndex":24,"affiliation":5686,"properties":23},"f4ce82d5-7e45-49fa-8dc7-f5b45cc84eb3",{"id":5622,"createTime":5623,"updateTime":5624,"relativeEntities":5687,"slug":5626,"properties":5688,"entityType":68,"verifyStatus":22,"verifyTime":23,"verifyNote":23,"syncStatus":22,"languages":23,"translateLanguages":23,"viewCount":24},[],{"title":5689},{"EN":5629},{"openalex":5691,"orcid":5693,"title":5695},{"VOID":5692},"A5011892202",{"VOID":5694},"https:\u002F\u002Forcid.org\u002F0000-0002-0720-6760",{"EN":5696},"Changbin 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