王绍军,苏州大学光电科学与工程学院教授和博士生导师、现代光学技术教育部重点实验室副主任、光电学院第三届学术委员会委员。自2016年获博士学位以来,长期致力于“共振纳米光子学”前沿领域,以等离激元和全介电超表面为核心平台,发展水浮法无损转移工艺和微区光谱表征技术,深入探索基于非局域共振效应的光子新机制,用于高效光产生、高灵敏光传感及多维光探测等方面,相关成果发表在Nat. Commun.、Nano Lett.、Laser & Photonics Rev.、Phys. Rev. Lett.等国际期刊上。先后主持国家自然科学基金、江苏省自然科学基金等科研项目7项。多次受邀做国际会议特邀报告;担任《激光与光电子学进展》第三、四届青年编委、中国光学工程学会光与物质相互作用专委会委员,以及IEEE IPC、META、微纳光学创新论坛等多个国内外重要会议专题组委;为NC、SA、Light、ACS系列、AM系列等学术期刊审稿。指导的学生获中国科协青年人才托举工程、江苏省优秀硕士学位论文、中国激光杂志社首届“青衿奖”提名奖、䇹政学者等多项荣誉。
代表性论著
[1]Yiheng Zhai, Chaojie Xu, Zhenghe Zhang, Peng Li, Shunsuke Murai, Jaime Gómez Rivas, Xiaofeng Li, and Shaojun Wang, Efficient Redirection of Trapped Broad-Band Fluorescence from Substrates into Free Space Using c-Si Metasurfaces. Nano Letters, 2024, 24: 11311.
[2]Zhenghe Zhang, Chaojie Xu, Chen Liu, Man Lang, Yuehao Zhang, Minghao Li, Wanli Lu, Zefeng Chen, Chinhua Wang, Shaojun Wang, and Xiaofeng Li, Dual Control of Enhanced Quasi-Bound States in the Continuum Emission from Resonant c-Si Metasurfaces. Nano Letters, 2023, 23: 7584.
[3]Zhenghe Zhang, Pengbo Liu, Wanli Lu, Ping Bai, Bingchang Zhang, Zefeng Chen, Stefan A.Maier, Jaime Gómez Rivas, Shaojun Wang, and Xiaofeng Li. High-Q Collective Mie Resonances in Monocrystalline Silicon Nanoantenna Arrays for the Visible Light. Fundamental Research, 2023, 3: 823. (Published online:2022-06)
[4]Shaojun Wang, Quynh Le-Van, Thibault Peyronel, Mohammad Ramezani, Niels Van Hoof, Tobias G. Tiecke, and Jaime Gómez Rivas, Plasmonic Nanoantenna Arrays as Efficient Etendue Reducers for Optical Detection, ACS Photonics, 2018,6: 2478.
[5]Shaojun Wang, Strong Light-Molecule Coupling: Routes to New Hybrid Materials, Ph.D. thesis, Defended on 2015 Sep 11.
Transferable Resonant Metasurfaces
2020年入职苏大以来的研究工作:
[1]Z. Zhang, C. Xu, X. Huang, F. Yang, Z. Chen, M. Li, X. Liu, G. Li, Y. Song, X. Li, and S. Wang, Directional and Polarization-Encoded Emission Via Rotational Displacement in Nonlocal Metasurfaces, Laser & Photonics Rev. e71354 (2026)
Research Highlight: we introduce a rotatable diatomic-lattice metasurface that maximizes Q-factor, emitter-field overlap, and geometric-phase control. Rotating eccentric nanodisks tunes linear polarization with stable spectra; geometric-phase supercells yield directional circular polarized emission.
Research Highlight: we demonstrate a pronounced, Lorentzian-shaped EIT-like resonance in a nonlocal metasurface, in which over 75% of the electric-field energy is concentrated in the surrounding medium, thereby facilitating efficient all-optical switching and highly sensitive biosensing in aqueous environments.

Research Highlight: we demonstrate unidirectional, strongly Purcell-enhanced exciton emission from ultrathin InSe by embedding it in an asymmetric Au nanocube dimer-on-mirror nanocavity that launches light efficiently into an on-chip Si nanowire waveguide.
[4]C. Wang, S. Li, Y. Chen, Q. Zhou, J. Luo, S. Wang, L. Gao, and Y. Xu, "Dual-resonance metagrating for enhancing or annihilating third-harmonic generation at terahertz frequencies", Phys. Rev. A 111: 063509 (2025)
[5]S. Gu, C. Wang, Z. Gao, L. Gao, F. Gao, S. Wang, and Y. Xu, "Discrete Ultra-Broadband Perfect Anomalous Reflection in Depth Gradient Metasurfaces", Chin. Phys. Lett. 42: 090401 (2025)
[6]K. Wu, C. Zhang, K. Zhang, S. Wang et al. "Plasmonic Quasi-Bound States in Continuum Facilitated Bulk Photovoltaic Effect for Spectrally Selective and Polarization-Sensitive Bipolar Photodetection", ACS Photonics 12: 4388 (2025)
[7]Y. Luo, T. Yu, K. Zhang, P. Sun, K. Wu, S. Wu, J. Yang, S. Wang et al. "All-Silicon Dual-Wavelength Hot-Electron Photodetector with Quasi-Omnidirectional Schottky Interface for Ultralow-Noise Equivalent Power Encrypted Demultiplexing Telecommunication", ACS Photonics 12: 5501 (2025)

Research Highlight: a c-Si metasurface on quartz diffractively redirects substrate-trapped broadband (RGB) fluorescence into free space, boosting photoluminescence by 2.5× and improving emission uniformity.
[9]王绍军,张郑合,侯紫玥,翟一恒,徐超捷,李孝峰,“超构表面调控可见光发射及其应用(特邀)”,激光与光电子学进展 61:0323001(2024).
S.Wang, Z. Zhang, Z. Hou, Y. Zhai, C. Xu, and X. Li, "Metasurfaces for Manipulating and Controlling Visible-Light Emission and Its Applications (Invited)", Laser Optoelectron. P. 61: 0323001 (2024).
[10]T. Ma, H. Wang, Z. Wu, Y. Zhao, C. Chen, X. Yin, L. Hu, F. Yao, Q. Lin, S. Wang, D. Zhao, X. Li, and C. Wang, "Hole Transport Layer-Free Low-Bandgap Perovskite Solar Cells for Efficient All-Perovskite Tandems", Adv. Mater. 36: 2308240(2024).
[11]Z. Chem, F. Shen, Z. Zhang, K. Wu, Y. Jing, M. Long, S. Wang, and J. Xu, "Synergistic Effect of Chiral Metasurface and Hot Carrier Injection Enabling Manipulation of Valley Polarization of WSe2 at Room Temperature", Adv. Phys. Res. 3: 2300062 (2024).
[12]Y. Zhang, Z. Zhang, C. Xu, W. Lu, Z. Chen, C. Wang, F. Xiao, S. Wang, and X. Li, “Precisely constructing hybrid nanogap arrays via wet-transfer of dielectric metasurfaces onto a plasmonic mirror”, Opt. Express 31, 34280 (2023)

Research Highlight: we demonstrate a scalable wet-transfer fabrication method for hybrid Mie–plasmonic metasurfaces that immobilizes monocrystalline Si nanoantenna arrays on ultrasmooth gold, enabling oxide- and nanogap-mediated hybrid modes (including BICs) with strong field enhancement for active metasurface applications (e.g., MEMS and LiDAR).
[13]Z. Zhang, C. Xu, C. Liu, M. Lang, Y. Zhang, M. Li, W. Lu, Z. Chen, C. Wang, S. Wang, and X. Li, "Dual Control of Enhanced Quasi-Bound States in the Continuum Emission from Resonant c-Si Metasurfaces", Nano Lett. 16, 7584 (2023).

Research Highlight: we present a lattice- and multipolar-engineering strategy that boosts out-coupling and directional emission from quasi-BICs in monocrystalline silicon metasurfaces, turning otherwise weakly emitting high-Q resonances into brighter, device-relevant light sources for compact LEDs, lasers, and on-chip nanophotonics.
[14]C. Zhang, B. Huang, H. Li, H. Chen, T. Yu, B. Zhang, S. Wang, C Liu, Y Luo, SA Maier, and X Li,“Plasmonic Nanoneedle Arrays with Enhanced Hot Electron Photodetection for Near‐IR Imaging”,Adv. Funct. Mater. 33, 2304368 (2023)
[15]Z. Zhang, P. Liu, W. Lu, P. Bai, B. Zhang, Z. Chen, S. A. Maier, J. Gómez Rivas, S. Wang, and X. Li, “High-Q Collective Mie Resonances in Monocrystalline Silicon Nanoantenna Arrays for the Visible Light”, Fundam. Res.3,822 (2023).

Research Highlight: the water-floating (float-off) transfer is the key advance in this work. It firstly enables low-loss c-Si metasurfaces fabricated on SOI to be reliably transferred and integrated a flexible metasurface membrane onto a wide range of functional substrates (e.g., quartz, glass, PDMS, lithium niobate, and device stacks), greatly expanding integration options while preserving optical performance.
[16]P. Liu, Z. Zhang, M. Lang, W. Lu, P. Bai, Z. Chen, S. Wang, and X. Li, “Manipulating the Directional Emission of Monolayer Semiconductors by Dielectric Nanoantenna Arrays”, J. Opt.24, 24005 (2022).
[17]F. Shen, Z. Zhang, Y. Zhou, J. Ma, K. Chen, H. Chen, S. Wang, J. Xu, and Z. Chen, "Transition metal dichalcogenide metaphotonic and self-coupled polaritonic platform grown by chemical vapor deposition", Nat. Commun. 13, 5597 (2022).
[18]R. H. Godiksen, S. Wang, TV Raziman, J. Gómez Rivas, and A. G. Curto, "Impact of indirect transitions on valley polarization in WS2 and WSe2", Nanoscale 14, 17761(2022).
[19]T. V. Raziman, C. Peter Visser, S. Wang, J. Gómez Rivas, and A. G. Curto,“Exciton diffusion and annihilation in nanophotonic Purcell landscapes”, Adv. Opt. Mater. 10, 202200103 (2022).
[20]C. Bian, B. Zhang, Z. Zhang, H. Chen, D. Zhang, S. Wang, J. Ye, L. He, J. Jie, and X. Zhang, “Wafer-Scale Fabrication of Silicon Nanocones via Controlling Catalyst Evolution in All-Wet Metal-Assisted Chemical Etching”, ACS Omega 7, 2234 (2022).
[21]A. Berghuis, T. V. Raziman, A. Halpin, S. Wang, A. G. Curto, and J. Gómez Rivas, “Effective Negative Diffusion of Singlet Excitons in Organic Semiconductors”, J. Phys. Chem. Lett.12, 1360 (2021).
[22]S. Wang, T. V. Raziman, S. Murai, G. W. Castellanos, P. Bai, A. Matthijs Berghuis, R. H. Godiksen, A. G. Curto, and J. Gómez Rivas, "Collective Mie exciton-polaritons in an atomically thin semiconductor", J. Phys. Chem. C 124, 19196 (2020).
[23]R. H. Godiksen, S. Wang, T. V. Raziman, M. H. D. Guimaraes, J. Gómez Rivas, and A. G. Curto, Correlated Fluorescence Fluctuations in a Two-Dimensional Semiconductor, Nano Lett. 20, 4829 (2020).
诚挚地欢迎直博生、考博生、保研生、考研生、大一/二学生加入我们:
苏大META小分队
2026年5月30日毕业合影

2025年6月毕业合影

2024年6月毕业合影

学术型人才去向:
哈工大-苏大联合培养、浙大直博
公司就业去向:
上海雷鸟科技、杭州玉之泉精密仪器、华宏科技、京东方、第三代半导体研究院、北京豪威、矩阵光电等
致敬母校UDS/Unistra:

I. Lower-Dimensional Nanophotonics
1. Shaojun Wang, Songlin Li, Thibault Chervy, Atef Shalabney, Stefano Azzini, Emanuele Orgiu, James A. Hutchison, Cyriaque Genet, Paolo Samorì, and Thomas W. Ebbesen “Coherent Coupling of WS2 Monolayers with Metallic Photonic Nanostructures at Room Temperature”, Nano Letters, 7, 4368-4374 (2016). (Citations>140)
2. Thibault Chervy, Stefano Azzini, Etienne Lorchat, Shaojun Wang, Yuri Gorodetski, James A. Hutchison, Stéphane Berciaud, Thomas W. Ebbesen, and Cyriaque Genet, “Room Temperature Chiral Coupling of Valley Excitons with Spin-Momentum Locked Surface Plasmons”, arXiv:1701.07972 (2017), ACS Photonics, 4, 1281-1287 (2018) (Citations>49)
3. Shaojun Wang,* Quynh Le-Van, Fabio Vaianella, Bjorn Maes, Simone Eizagirre Barker, Rasmus Hjelmgart, Alberto G. Curto, and Jaime Gómez Rivas, “Limits to Strong Coupling of Excitons in Multilayer WS2 with Collective Plasmonic Resonances”, arXiv:1808.08388 (2018), ACS Photonics, 2, 286-293 (2019) (Citations>10)
4. Simone Eizagirre Barker, Shaojun Wang,* Rasmus Hjelmgart, Gabi Castellanos Gonzalez, Matthijs Berghuis, T. V. Raziman, Alberto G. Curto, and Jaime Gómez Rivas, “Preserving the Emission Efficiency and Lifetime of a Monolayer Semiconductorupon Transfer”, Advanced Optical Materials, 7, 1900351 (2019)
II. Applications of Optical Nanoantenna Arrays
5. Shaojun Wang,* Quynh Le-Van, Thibault Peyronel, Mohammad Ramezani, Niels Van Hoof, Tobias G. Tiecke, and Jaime Gómez Rivas, “Plasmonic Nanoantenna Arrays as Efficient Etendue Reducers for Optical Detection”, ACS Photonics, 6, 2478-2485 (2018)
6. Shunsuke Murai, K. Noguchi, Gabriel W. Castellanos, Shaojun Wang, Katsuhisa Tanaka, and Jaime Gómez Rivas, “Light Conversion Efficiency of Emitters on Top of Plasmonic and Dielectric Arrays of Nanoparticles”, ECS Journal of Solid State Science and Technology, 1, 011614 (2020), Focused issue, Recent Advances in Wide Bandgap III-Nitride Devices and Solid State Lighting: A Tribute to Isamu Akasaki.
III. Strong Coupling in Organic Materials
7. Shaojun Wang, Thibault Chervy, Jino George, James A. Hutchison, Cyriaque Genet, Thomas W. Ebbesen, “Quantum Yield of Polariton Emission from Hybrid Light-Matter States”, The Journal of Physical Chemistry Letters, 8, 1433-1439 (2014) (Citations>60)
8. Jino George,# Shaojun Wang,# Thibault Chervy, # Antoine Canaguier-Durand, Gael Schaeffer, Jean-Marie Lehn, James A. Hutchison, Cyriaque Genet, and Thomas W. Ebbesen,“Ultra-strong Coupling of Molecular Materials: Spectroscopy and Dynamics”, Faraday Discussions, 178, 281-294 (2015) (Citations>75)
9. Xiaolan Zhong, Thibault Chervy, Shaojun Wang, Jino George, Anoop Thomas, James A. Hutchison, Eloise Devaux, Cyriaque Genet, and Thomas W. Ebbesen, “Non‐Radiative Energy Transfer Mediated by Hybrid Light‐Matter States”, Angew. Chem. Int. Ed., 21, 6202-6206 (2016) (Hot paper, Citations>80)
10. Mohammad Ramezani, Alexei Halpin, Shaojun Wang, Matthijs Berghuis, and Jaime Gómez Rivas, “Ultrafast Dynamics of Non-equilibrium Plasmon-Exciton-Polariton Condensate”, Nano Letters,19,8590 (2019)
11. Anton Matthijs Berghuis, Alexei Halpin, Quynh Le-Van, Mohammad Ramezani, Shaojun Wang, Shunsuke Murai, and Jaime Gómez Rivas, “Enhanced Delayed Fluorescence in Tetracene Crystals by Strong Light‐Matter Coupling”, Advanced Functional Materials, 36, 1901317 (2019), selected as Frontispiece.
12. Shaojun Wang, Arkadiusz Mika, James A. Hutchison, Cyriaque Genet, Abdelaziz Jouaiti, Mir Wais Hosseini and Thomas W. Ebbesen, “Phase Transition of a Perovskite Strongly Coupled to the Vacuum Field”, Nanoscale, 13, 7243-7248 (2014) (Citations>35)
IV. Surface Plasmons
13. Yuri Gorodetski, Thibault Chervy, Shaojun Wang, James A. Hutchison, Aurélien Drezet, Cyriaque Genet, and Thomas W. Ebbesen, “Ultrafast Leakage Imaging and Tracking of Surface Plasmon Pulses”, Optica, 1, 48-53 (2016)
14. Adi Salomon,Shaojun Wang, James A Hutchison, Cyriaque Genet, and Thomas W Ebbesen, “Strong Light‐Molecule Coupling on Plasmonic Arrays of Different Symmetry”, ChemPhysChem, 14, 1882-1886 (2013)
王绍军,苏州大学光电科学与工程学院教授和博士生导师、现代光学技术教育部重点实验室副主任、光电学院第三届学术委员会委员。自2016年获博士学位以来,长期致力于“共振纳米光子学”前沿领域,以等离激元和全介电超表面为核心平台,发展水浮法无损转移工艺和微区光谱表征技术,深入探索基于非局域共振效应的光子新机制,用于高效光产生、高灵敏光传感及多维光探测等方面,相关成果发表在Nat. Commun.、Nano Lett.、Laser & Photonics Rev.、Phys. Rev. Lett.等国际期刊上。先后主持国家自然科学基金、江苏省自然科学基金等科研项目7项。多次受邀做国际会议特邀报告;担任《激光与光电子学进展》第三、四届青年编委、中国光学工程学会光与物质相互作用专委会委员,以及IEEE IPC、META、微纳光学创新论坛等多个国内外重要会议专题组委;为NC、SA、Light、ACS系列、AM系列等学术期刊审稿。指导的学生获中国科协青年人才托举工程、江苏省优秀硕士学位论文、中国激光杂志社首届“青衿奖”提名奖、䇹政学者等多项荣誉。
代表性论著
[1]Yiheng Zhai, Chaojie Xu, Zhenghe Zhang, Peng Li, Shunsuke Murai, Jaime Gómez Rivas, Xiaofeng Li, and Shaojun Wang, Efficient Redirection of Trapped Broad-Band Fluorescence from Substrates into Free Space Using c-Si Metasurfaces. Nano Letters, 2024, 24: 11311.
[2]Zhenghe Zhang, Chaojie Xu, Chen Liu, Man Lang, Yuehao Zhang, Minghao Li, Wanli Lu, Zefeng Chen, Chinhua Wang, Shaojun Wang, and Xiaofeng Li, Dual Control of Enhanced Quasi-Bound States in the Continuum Emission from Resonant c-Si Metasurfaces. Nano Letters, 2023, 23: 7584.
[3]Zhenghe Zhang, Pengbo Liu, Wanli Lu, Ping Bai, Bingchang Zhang, Zefeng Chen, Stefan A.Maier, Jaime Gómez Rivas, Shaojun Wang, and Xiaofeng Li. High-Q Collective Mie Resonances in Monocrystalline Silicon Nanoantenna Arrays for the Visible Light. Fundamental Research, 2023, 3: 823. (Published online:2022-06)
[4]Shaojun Wang, Quynh Le-Van, Thibault Peyronel, Mohammad Ramezani, Niels Van Hoof, Tobias G. Tiecke, and Jaime Gómez Rivas, Plasmonic Nanoantenna Arrays as Efficient Etendue Reducers for Optical Detection, ACS Photonics, 2018,6: 2478.
[5]Shaojun Wang, Strong Light-Molecule Coupling: Routes to New Hybrid Materials, Ph.D. thesis, Defended on 2015 Sep 11.
Transferable Resonant Metasurfaces
2020年入职苏大以来的研究工作:
[1]Z. Zhang, C. Xu, X. Huang, F. Yang, Z. Chen, M. Li, X. Liu, G. Li, Y. Song, X. Li, and S. Wang, Directional and Polarization-Encoded Emission Via Rotational Displacement in Nonlocal Metasurfaces, Laser & Photonics Rev. e71354 (2026)
Research Highlight: we introduce a rotatable diatomic-lattice metasurface that maximizes Q-factor, emitter-field overlap, and geometric-phase control. Rotating eccentric nanodisks tunes linear polarization with stable spectra; geometric-phase supercells yield directional circular polarized emission.
Research Highlight: we demonstrate a pronounced, Lorentzian-shaped EIT-like resonance in a nonlocal metasurface, in which over 75% of the electric-field energy is concentrated in the surrounding medium, thereby facilitating efficient all-optical switching and highly sensitive biosensing in aqueous environments.

Research Highlight: we demonstrate unidirectional, strongly Purcell-enhanced exciton emission from ultrathin InSe by embedding it in an asymmetric Au nanocube dimer-on-mirror nanocavity that launches light efficiently into an on-chip Si nanowire waveguide.
[4]C. Wang, S. Li, Y. Chen, Q. Zhou, J. Luo, S. Wang, L. Gao, and Y. Xu, "Dual-resonance metagrating for enhancing or annihilating third-harmonic generation at terahertz frequencies", Phys. Rev. A 111: 063509 (2025)
[5]S. Gu, C. Wang, Z. Gao, L. Gao, F. Gao, S. Wang, and Y. Xu, "Discrete Ultra-Broadband Perfect Anomalous Reflection in Depth Gradient Metasurfaces", Chin. Phys. Lett. 42: 090401 (2025)
[6]K. Wu, C. Zhang, K. Zhang, S. Wang et al. "Plasmonic Quasi-Bound States in Continuum Facilitated Bulk Photovoltaic Effect for Spectrally Selective and Polarization-Sensitive Bipolar Photodetection", ACS Photonics 12: 4388 (2025)
[7]Y. Luo, T. Yu, K. Zhang, P. Sun, K. Wu, S. Wu, J. Yang, S. Wang et al. "All-Silicon Dual-Wavelength Hot-Electron Photodetector with Quasi-Omnidirectional Schottky Interface for Ultralow-Noise Equivalent Power Encrypted Demultiplexing Telecommunication", ACS Photonics 12: 5501 (2025)

Research Highlight: a c-Si metasurface on quartz diffractively redirects substrate-trapped broadband (RGB) fluorescence into free space, boosting photoluminescence by 2.5× and improving emission uniformity.
[9]王绍军,张郑合,侯紫玥,翟一恒,徐超捷,李孝峰,“超构表面调控可见光发射及其应用(特邀)”,激光与光电子学进展 61:0323001(2024).
S.Wang, Z. Zhang, Z. Hou, Y. Zhai, C. Xu, and X. Li, "Metasurfaces for Manipulating and Controlling Visible-Light Emission and Its Applications (Invited)", Laser Optoelectron. P. 61: 0323001 (2024).
[10]T. Ma, H. Wang, Z. Wu, Y. Zhao, C. Chen, X. Yin, L. Hu, F. Yao, Q. Lin, S. Wang, D. Zhao, X. Li, and C. Wang, "Hole Transport Layer-Free Low-Bandgap Perovskite Solar Cells for Efficient All-Perovskite Tandems", Adv. Mater. 36: 2308240(2024).
[11]Z. Chem, F. Shen, Z. Zhang, K. Wu, Y. Jing, M. Long, S. Wang, and J. Xu, "Synergistic Effect of Chiral Metasurface and Hot Carrier Injection Enabling Manipulation of Valley Polarization of WSe2 at Room Temperature", Adv. Phys. Res. 3: 2300062 (2024).
[12]Y. Zhang, Z. Zhang, C. Xu, W. Lu, Z. Chen, C. Wang, F. Xiao, S. Wang, and X. Li, “Precisely constructing hybrid nanogap arrays via wet-transfer of dielectric metasurfaces onto a plasmonic mirror”, Opt. Express 31, 34280 (2023)

Research Highlight: we demonstrate a scalable wet-transfer fabrication method for hybrid Mie–plasmonic metasurfaces that immobilizes monocrystalline Si nanoantenna arrays on ultrasmooth gold, enabling oxide- and nanogap-mediated hybrid modes (including BICs) with strong field enhancement for active metasurface applications (e.g., MEMS and LiDAR).
[13]Z. Zhang, C. Xu, C. Liu, M. Lang, Y. Zhang, M. Li, W. Lu, Z. Chen, C. Wang, S. Wang, and X. Li, "Dual Control of Enhanced Quasi-Bound States in the Continuum Emission from Resonant c-Si Metasurfaces", Nano Lett. 16, 7584 (2023).

Research Highlight: we present a lattice- and multipolar-engineering strategy that boosts out-coupling and directional emission from quasi-BICs in monocrystalline silicon metasurfaces, turning otherwise weakly emitting high-Q resonances into brighter, device-relevant light sources for compact LEDs, lasers, and on-chip nanophotonics.
[14]C. Zhang, B. Huang, H. Li, H. Chen, T. Yu, B. Zhang, S. Wang, C Liu, Y Luo, SA Maier, and X Li,“Plasmonic Nanoneedle Arrays with Enhanced Hot Electron Photodetection for Near‐IR Imaging”,Adv. Funct. Mater. 33, 2304368 (2023)
[15]Z. Zhang, P. Liu, W. Lu, P. Bai, B. Zhang, Z. Chen, S. A. Maier, J. Gómez Rivas, S. Wang, and X. Li, “High-Q Collective Mie Resonances in Monocrystalline Silicon Nanoantenna Arrays for the Visible Light”, Fundam. Res.3,822 (2023).

Research Highlight: the water-floating (float-off) transfer is the key advance in this work. It firstly enables low-loss c-Si metasurfaces fabricated on SOI to be reliably transferred and integrated a flexible metasurface membrane onto a wide range of functional substrates (e.g., quartz, glass, PDMS, lithium niobate, and device stacks), greatly expanding integration options while preserving optical performance.
[16]P. Liu, Z. Zhang, M. Lang, W. Lu, P. Bai, Z. Chen, S. Wang, and X. Li, “Manipulating the Directional Emission of Monolayer Semiconductors by Dielectric Nanoantenna Arrays”, J. Opt.24, 24005 (2022).
[17]F. Shen, Z. Zhang, Y. Zhou, J. Ma, K. Chen, H. Chen, S. Wang, J. Xu, and Z. Chen, "Transition metal dichalcogenide metaphotonic and self-coupled polaritonic platform grown by chemical vapor deposition", Nat. Commun. 13, 5597 (2022).
[18]R. H. Godiksen, S. Wang, TV Raziman, J. Gómez Rivas, and A. G. Curto, "Impact of indirect transitions on valley polarization in WS2 and WSe2", Nanoscale 14, 17761(2022).
[19]T. V. Raziman, C. Peter Visser, S. Wang, J. Gómez Rivas, and A. G. Curto,“Exciton diffusion and annihilation in nanophotonic Purcell landscapes”, Adv. Opt. Mater. 10, 202200103 (2022).
[20]C. Bian, B. Zhang, Z. Zhang, H. Chen, D. Zhang, S. Wang, J. Ye, L. He, J. Jie, and X. Zhang, “Wafer-Scale Fabrication of Silicon Nanocones via Controlling Catalyst Evolution in All-Wet Metal-Assisted Chemical Etching”, ACS Omega 7, 2234 (2022).
[21]A. Berghuis, T. V. Raziman, A. Halpin, S. Wang, A. G. Curto, and J. Gómez Rivas, “Effective Negative Diffusion of Singlet Excitons in Organic Semiconductors”, J. Phys. Chem. Lett.12, 1360 (2021).
[22]S. Wang, T. V. Raziman, S. Murai, G. W. Castellanos, P. Bai, A. Matthijs Berghuis, R. H. Godiksen, A. G. Curto, and J. Gómez Rivas, "Collective Mie exciton-polaritons in an atomically thin semiconductor", J. Phys. Chem. C 124, 19196 (2020).
[23]R. H. Godiksen, S. Wang, T. V. Raziman, M. H. D. Guimaraes, J. Gómez Rivas, and A. G. Curto, Correlated Fluorescence Fluctuations in a Two-Dimensional Semiconductor, Nano Lett. 20, 4829 (2020).
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上海雷鸟科技、杭州玉之泉精密仪器、华宏科技、京东方、第三代半导体研究院、北京豪威、矩阵光电等
致敬母校UDS/Unistra:

I. Lower-Dimensional Nanophotonics
1. Shaojun Wang, Songlin Li, Thibault Chervy, Atef Shalabney, Stefano Azzini, Emanuele Orgiu, James A. Hutchison, Cyriaque Genet, Paolo Samorì, and Thomas W. Ebbesen “Coherent Coupling of WS2 Monolayers with Metallic Photonic Nanostructures at Room Temperature”, Nano Letters, 7, 4368-4374 (2016). (Citations>140)
2. Thibault Chervy, Stefano Azzini, Etienne Lorchat, Shaojun Wang, Yuri Gorodetski, James A. Hutchison, Stéphane Berciaud, Thomas W. Ebbesen, and Cyriaque Genet, “Room Temperature Chiral Coupling of Valley Excitons with Spin-Momentum Locked Surface Plasmons”, arXiv:1701.07972 (2017), ACS Photonics, 4, 1281-1287 (2018) (Citations>49)
3. Shaojun Wang,* Quynh Le-Van, Fabio Vaianella, Bjorn Maes, Simone Eizagirre Barker, Rasmus Hjelmgart, Alberto G. Curto, and Jaime Gómez Rivas, “Limits to Strong Coupling of Excitons in Multilayer WS2 with Collective Plasmonic Resonances”, arXiv:1808.08388 (2018), ACS Photonics, 2, 286-293 (2019) (Citations>10)
4. Simone Eizagirre Barker, Shaojun Wang,* Rasmus Hjelmgart, Gabi Castellanos Gonzalez, Matthijs Berghuis, T. V. Raziman, Alberto G. Curto, and Jaime Gómez Rivas, “Preserving the Emission Efficiency and Lifetime of a Monolayer Semiconductorupon Transfer”, Advanced Optical Materials, 7, 1900351 (2019)
II. Applications of Optical Nanoantenna Arrays
5. Shaojun Wang,* Quynh Le-Van, Thibault Peyronel, Mohammad Ramezani, Niels Van Hoof, Tobias G. Tiecke, and Jaime Gómez Rivas, “Plasmonic Nanoantenna Arrays as Efficient Etendue Reducers for Optical Detection”, ACS Photonics, 6, 2478-2485 (2018)
6. Shunsuke Murai, K. Noguchi, Gabriel W. Castellanos, Shaojun Wang, Katsuhisa Tanaka, and Jaime Gómez Rivas, “Light Conversion Efficiency of Emitters on Top of Plasmonic and Dielectric Arrays of Nanoparticles”, ECS Journal of Solid State Science and Technology, 1, 011614 (2020), Focused issue, Recent Advances in Wide Bandgap III-Nitride Devices and Solid State Lighting: A Tribute to Isamu Akasaki.
III. Strong Coupling in Organic Materials
7. Shaojun Wang, Thibault Chervy, Jino George, James A. Hutchison, Cyriaque Genet, Thomas W. Ebbesen, “Quantum Yield of Polariton Emission from Hybrid Light-Matter States”, The Journal of Physical Chemistry Letters, 8, 1433-1439 (2014) (Citations>60)
8. Jino George,# Shaojun Wang,# Thibault Chervy, # Antoine Canaguier-Durand, Gael Schaeffer, Jean-Marie Lehn, James A. Hutchison, Cyriaque Genet, and Thomas W. Ebbesen,“Ultra-strong Coupling of Molecular Materials: Spectroscopy and Dynamics”, Faraday Discussions, 178, 281-294 (2015) (Citations>75)
9. Xiaolan Zhong, Thibault Chervy, Shaojun Wang, Jino George, Anoop Thomas, James A. Hutchison, Eloise Devaux, Cyriaque Genet, and Thomas W. Ebbesen, “Non‐Radiative Energy Transfer Mediated by Hybrid Light‐Matter States”, Angew. Chem. Int. Ed., 21, 6202-6206 (2016) (Hot paper, Citations>80)
10. Mohammad Ramezani, Alexei Halpin, Shaojun Wang, Matthijs Berghuis, and Jaime Gómez Rivas, “Ultrafast Dynamics of Non-equilibrium Plasmon-Exciton-Polariton Condensate”, Nano Letters,19,8590 (2019)
11. Anton Matthijs Berghuis, Alexei Halpin, Quynh Le-Van, Mohammad Ramezani, Shaojun Wang, Shunsuke Murai, and Jaime Gómez Rivas, “Enhanced Delayed Fluorescence in Tetracene Crystals by Strong Light‐Matter Coupling”, Advanced Functional Materials, 36, 1901317 (2019), selected as Frontispiece.
12. Shaojun Wang, Arkadiusz Mika, James A. Hutchison, Cyriaque Genet, Abdelaziz Jouaiti, Mir Wais Hosseini and Thomas W. Ebbesen, “Phase Transition of a Perovskite Strongly Coupled to the Vacuum Field”, Nanoscale, 13, 7243-7248 (2014) (Citations>35)
IV. Surface Plasmons
13. Yuri Gorodetski, Thibault Chervy, Shaojun Wang, James A. Hutchison, Aurélien Drezet, Cyriaque Genet, and Thomas W. Ebbesen, “Ultrafast Leakage Imaging and Tracking of Surface Plasmon Pulses”, Optica, 1, 48-53 (2016)
14. Adi Salomon,Shaojun Wang, James A Hutchison, Cyriaque Genet, and Thomas W Ebbesen, “Strong Light‐Molecule Coupling on Plasmonic Arrays of Different Symmetry”, ChemPhysChem, 14, 1882-1886 (2013)
