黄陆军 华东师范大学物理学院研究员,主要从事光(声)与物质相互作用研究,通过设计构建光子晶体和介质超表面实现调控光与电磁波(声波)的局域与传播。在相关领域发表论文60余篇,其中一作或者通讯作者30余篇,包括Nature Reviews Physics, Physics Reports, Report on Progress in Physics, Nature Communications, Nano Letters, ACS Nano, Advanced Science, Advanced Photonics, Laser Photonics Reviews等。
教育经历:
2004.09-2008.07 华东师范大学 理工学院物理系,学士。
2008.09-2012.08 中科院上海技术物理研究所,微电子与固体电子学, 硕士研究生
2012.08-2017.12 北卡罗莱纳州立大学(美国),材料科学与工程系,博士
工作经历:
2018.07-2021.11 新南威尔士大学(澳大利亚) 博士后
2022.07-至今 华东师范大学 青年研究员
社会兼职:
目前担任美国物理学会Physical Review 系列杂志(PRL、PRApplied和PRB等)、Nature Photonics、Nature Communications、Advanced Materials,Advanced Functional Materials、Optica等期刊的审稿人。曾担任Journal of Optics的二维材料纳米光子学特刊客座编辑。
开授课程:
电动力学
招生信息
欢迎对纳米光学、二维材料光学、声学超材料感兴趣的同学咨询程亚教授团队黄陆军研究员课题组!
研究方向:
主要研究方向为光(声)与物质的相互作用,包括全介质纳米光子学,二维材料纳米光子学,声学超材料和超表面等。
(1)基于介质超材料和超表面的纳米光子学。主要研究介质超材料和超表面的共振模式特性以及利用这些共振模式增强光与物质的相互作用。近期重点着重研究一类特殊的共振模式-连续谱束缚态(BICs)。BICs是一种特殊的共振漏模,它的Q因子具有无穷大的特点。伴随着无穷大的Q因子,它的场局域能力也极强。这两个优异的特性使得BICs被广泛用来增强光与物质相互作用,包括激光器,强耦合,非线性谐波增强,传感器等。
(2)二维材料纳米光学。典型的二维材料包括石墨烯和过渡族金属硫化物,它们的相互作用是范德瓦尔斯力。单层过渡族金属硫化物具有直接带隙半导体和谷电子学特性,被视为实现原子层集成电路和集成光路的理想平台。我们将主要研究集成光学共振微腔与二维过渡族金属硫化物实现增强光与物质相互作用,并制备高性能光子与光电子器件,包括激光器,非线性谐波以及手性光源。
(3)声学超材料和超表面,目前主要研究耦合波导-谐振子体系中的声学连续谱束缚态。
科研项目:
华东师范大学双百启动经费
上海市浦江人才计划
发表论文:
[65]Y. Zhang+, L. Wang+, H. He, H. Duan, J. Huang*, C. Gao, S. You, L. Huang*, A. E. Miroshnichenko*, and C. Zhou*, "High-Q magnetic toroidal dipole resonances in all-dielectric metasurfaces", APL Photonics 9, 076106 (2024) (Editor's picks)
[64]H. Wang, J. Meng, J. Lin, B. Xu, H. Ma, Y. Kan, R. Chen, L. Huang, Y. Chen, F. Yue, C. Duan, J. Chu, L. Sun*, "Origion of the light-induced spin currents in heavy metal/magnetic insulator bilayers", Nature Communications 15, 4362 (2024)
[63]K. Sun, Y. Cai, L. Huang*, and Z. Han*, "Ultra-narrowband and rainbow-free mid-infrared thermal emitter enabled by a flat-band design in distorted photonic lattices.", Nature Communications 15(1), 4019 (2024)
[62]J. Qiu, S. Xiao, L. Huang*, A. E. Miroshnichenko, Dejian Zhang, T. Liu*, and T. Yu*, "Decision-making and control with diffractive neural networks.", Advanced Photonics Nexus 3(4), 046003 (2024)
[61]T. Liu, D. Zhang, W. Liu, T. Yu, F. Wu, S. Xiao*, L. Huang*, and A. E. Miroshnichenko*, Phase-change nonlocal metasurface for dynamic wave-front manipulations, Phys. Rev. Appl. 21, 044004 (2024)
[60]L. Huang+*, S. Li+, C. Zhou*, H. Zhong, S. You, L. Li*, Y. Cheng, and A. E. Miroshnichenko*, Realizing ultrahigh-Q resonances through harnessing symmerty-protected bound states in the continuum, Adv. Funct. Mater. 34 (11), 2309982 (2024)
[59]L. Wang, and L. Huang*, J. Opt 26, 045001 (2024) (Invited paper)
[58]L. Huang+*, S. Huang+, C. Shen+, S. Yves+, A. Pilipchuk+, X. Ni, S. Kim, Y. Chiang, D. A. Powell, J. Zhu, Y. Cheng, Y. Li*, A. F. Sadreev*, A. Alù*, and A. E Miroshnichenko*, Acoustic resonances in non-Hermitian open systems, Nature Reviews Physics 6,11-27 (2024)
[57]M. Zhou+, S. You+, L. Xu, M. Fan, J. Huang, W. Ma, M. Hu, S. Luo, M. Rahmani, Y. Cheng, L. Li, C. Zhou*, L. Huang*, A. E. Miroshnichenko*, " Bound states in the continuum in all-dielectric metasurfaces with scaled lattice constants", Science China Physics, Mechanics & Astronomy 66, 124212 (2023).
[56]Z. Li, M. Xie, G. Nie*, J. Wang, L. Huang*, "Pushing optical virus detection to a single particle through a high-Q quasi-bound states in the continuum in an all-dielectric metasurfaces", The Journal of Physical Chemistry Letters 14, 10762(2023)
[55]F. Kronowetter, M. Maeder, Y. Chiang, L. Huang, J. Schmid, S. Oberst, D. A. Powell, and S. Marburg, "Realistic prediction and engineering of high-Q modes to implement stable Fano resonances in acoustic devices", Nature Communications 14, 6747(2023)
[54]Jin, Rong; Huang, Lujun*; Zhou, Chaobiao; Guo, Jiaoyang; Fu, Zhenchu; Chen, Jian; Wang, Jian; Li, Xin; Yu, Feilong; Chen, Jin; Zhao, Zengyue; Chen, Xiaoshuang; Lu, Wei; Li, Guanhai*.Toroidal Dipole BIC-Driven Highly Robust Perfect Absorption with a Graphene-Loaded Metasurface.Nano Letters, 2023, 23(19): 9105-9113.
[53]I. A. Al-Ani, K. As’Ham, M. Alaloul, L. Xu, H. T. Hattori, L. Huang*, Andrey E Miroshnichenko*, "Quasibound state in continuum-induced double strong coupling in perovskite and WS2 monolayers", Phys. Rev. B 108, 045420 (2023)
[52]Huang, Lujun*; Jin, Rong; Zhou, Chaobiao; Li, Guanhai*; Xu, Lei; Overvig, Adam; Deng, Fu; Chen, Xiaoshuang; Lu, Wei; Alu, Andrea*; Miroshnichenko, Andrey E.*.Ultrahigh-Q guided mode resonances in an All-dielectric metasurface.Nature Communications, 2023, 14(1): 3433.
[51]S. You+, M. Zhou+, L. Xu, D. Chen, M. Fan, J. Huang, W. Ma, S. Luo, M. Rahmani, C. Zhou*, A. E. Miroshnichenko*, L. Huang*, "Quasi-bound states in the continuum with a stable resonance wavelength in dimer dielectric metasurfaces", Nanophotonics 12, 2051 (2023)
[50]R. Wang+, L. Xu+, L. Huang+, X. Zhang, H. Ruan, X. Yang, J. Lou, C. Chang*, X. Du*, "Ultrasensitive terehertz biodetection enabled by quasi-BIC-based metasensors", Small 19, 2301165 (2023)
[49]As'ham, Khalil; Al-Ani, Ibrahim; Alaloul, Mohammed; Abdo, Salah; Abdulghani, Amer; Lei, Wen; Hattori, Haroldo T.*; Huang, Lujun*; Miroshnichenko, Andrey E.*.Enhanced Strong Coupling in the Hybrid Dielectric-Metallic Nanoresonator and WS2 Monolayer.Physical Review Applied, 2023, 19(5): 054049.
[48]Ma, Wenbin; Zhou, Chaobiao*; Chen, Deliang; You, Shaojun; Wang, Xinfeng; Wang, Liyang; Jin, Li; Huang, Lujun; Wang, Daiqiang; Miroshnichenko, Andrey E..Active quasi-BICs metasurfaces assisted by epsilon-near-zero materials.Optics Express, 2023, 31(8): 13125-13139.
[47]Jia, Bin; Huang, Lujun*; Pilipchuk, Artem S.; Huang, Sibo; Shen, Chen; Sadreev, Almas F.; Li, Yong; Miroshnichenko, Andrey E.Bound States in the Continuum Protected by Reduced Symmetry of Three-Dimensional Open Acoustic Resonators.Physical Review Applied, 2023, 19(5): 054001.
[46]Z. Zheng, Lei Xu*, Lujun Huang, D. Smirnova, K. Z. Kamali, A. Yousefi, F. Deng, R. C. Morales, C. Ying, A. E. Miroshnichenko, D. N. Neshev, M. Rahmani*, "Third-harmonic generation and imaging with resonant Si membrane metasurface", Opto-Electronic Advances 6, 220174 (2023)
[45]L. Huang, L. Xu, D. A. Powell, W. J. Padilla, A. E. Miroshnichenko*, "Resonant leaky modes in all-dielectric metasystems: Fundamentals and Applications", Phys. Rep. 1008, 1-66 (2023)
[44]Zhou, Chaobiao; Huang, Lujun*; Jin, Rong; Xu, Lei; Li, Guanhai*; Rahmani, Mohsen; Chen, Xiaoshuang; Lu, Wei; Miroshnichenko, Andrey E.*.Bound States in the Continuum in Asymmetric Dielectric Metasurfaces.Laser & Photonics Reviews, 2023, 17(3): 2200564. (Featured as Front Inside Cover)
[43]Huang, Lujun*; Jia, Bin; Pilipchuk, Artem S.; Chiang, Yankei; Huang, Sibo; Li, Junfei; Shen, Chen; Bulgakov, Evgeny N.; Deng, Fu; Powell, David A.; Cummer, Steven A.; Li, Yong; Sadreev, Almas F.; Miroshnichenko, Andrey E.General Framework of Bound States in the Continuum in an Open Acoustic Resonator.Physical Review Applied, 2022, 18(5): 054021.
[42]Z. Zheng, L. Xu*, L. Huang, D. Smirnova, P. Hong, C. Ying, M. Rahmani, “Boosting second-harmonic generation in the LiNbO3 metasurface using high-Q guided resonances and bound states in the continuum”, Phys. Rev. B 106, 125411(2022)
[41]A. Sadreev*, E. Bulgakov, A. Pilipchuk, A. E.Miroshnichenko, L. Huang, “Degenerate bound states in the continuum in square and triangular open acoustic resonators”, Phys. Rev. B 106, 085404(2022)
[40]M. Alaloul, J. B. Khurgin, I. Al-Ani, K. As’ham, L. Huang, H. T. Hattori, A. E Miroshnichenko*, “On-chip low-loss all-optical MoSe2 modulator”, Opt. Letts. 47, 3640(2022)
[39]As'ham, Khalil; Al-Ani, Ibrahim; Lei, Wen; Hattori, Haroldo T.; Huang, Lujun*; Miroshnichenko, Andrey.Mie Exciton-Polariton in a Perovskite Metasurface.Physical Review Applied, 2022, 18(1):014079.
[38]L. Huang+*, B. Jia+, Y. Chiang, S. Huang, C. Shen, F. Deng, T. Yang, D. A. Powell, Y. Li*, A. E. Miroshnichenko*, “Topological Supercavity resonances in the finite system”, Adv. Sci. 9, 2200257 (2022)
[37]R. M. Saadabad, L. Huang, A. B. Evlyukhin*, A. E. Miroshnichenko*, “Multifaced anapoles: from physics to applications”, Opt. Mater. Exp. 12, 1817(2022)
[36]F. Yu, J. Chen, L. Huang, Z. Zhao, J. Wang, R. Jin, J. Chen, J. Wang, A. E. Miroshnichenko, T. Li, G. Li*, X. Chen, W. Lu, “Photonic slide rule with metasurfaces”, Light Science & Applications 11, 77(2022)
[35]Meng, Bing; Wang, Jianfu; Zhou, Chaobiao*; Huang, Lujun*.Bound states in the continuum supported by silicon oligomer metasurfaces.Optics Letters, 2022, 47(6): 1549-1552.
[34]I. Al-Ani+, K. As' Ham+, O. Klochan, H. T. Hattori, L. Huang*, A. E. Miroshnichenko*, “Recent advances on strong ligh-matter interaction in atomically thin TMDC semiconductor materials”, J. Opts. 24, 053001(2022) (Invited Review)
[33]R. Zhou, T. Guo, L. Huang, K. Ullah*, “Engineering the harmonic generation in graphene”, Materials Today Physics 23, 100649(2022)
[32]C. Zhou*, T. Pu, J. Huang, M. Fan, L. Huang*, “Manipulating optical-scattering of QBICs in dielectric metasurface with off-center hole”, Nanomaterials 12, 54(2022)
[31]Huang, Lujun; Krasnok, Alex; Alú, Andrea; Yu, Yiling; Neshev, Dragomir; Miroshnichenko, Andrey E*.Enhanced light–matter interaction in two-dimensional transition metal dichalcogenides.Reports on Progress in Physics, 2022, 85(4): 046401. (Invited Review)
[30]Al-Ani, Ibrahim A. M.; As'Ham, Khalil; Huang, Lujun; Miroshnichenko, Andrey E.; Lei, Wen; Hattori, Haroldo T. Strong Coupling of Exciton and High-Q Mode in All-Perovskite Metasurfaces.Advanced Optical Materials, 2022, 10(1): 2101120.
[29]Reza Masoudian Saadabad; Lujun Huang*; Andrey E. Miroshnichenko*.Polarization-independent perfect absorber enabled by quasibound states in the continuum.Physical Review B, 2021, 104(23): 235405.
[28]Al-Ani, Ibrahim A. M.; As'Ham, Khalil; Huang, Lujun*; Miroshnichenko, Andrey E.*; Hattori, Haroldo T.*.Enhanced Strong Coupling of TMDC Monolayers by Bound State in the Continuum.Laser Photonics Reviews, 2021, 15(12): 2100240.
[27]K. Ou, F. Yu, G. Li*, W. Wang, J. Chen, A. E. Miroshnichenko*, L. Huang, T. Li, Z. Li, X. Chen*, W. Lu, “Broadband achromatic metalens in mid-wavelength infrared”, Laser &Photonics Reviews 15, 2100020 (2021)
[26]Huang, Lujun; Chiang, Yan Kei; Huang, Sibo; Shen, Chen; Deng, Fu; Cheng, Yi; Jia, Bin; Li, Yong*; Powell, David A.*; Miroshnichenko, Andrey E.*.Sound trapping in an open resonator.Nature Communications, 2021, 12: 4819.
[25]Zhou, Qingjia; Fu, Yangyang; Huang, Lujun; Wu, Qiannan; Miroshnichenko, Andrey; Gao, Lei; Xu, Yadong.Geometry symmetry-free and higher-order optical bound states in the continuum.Nature Communications, 2021, 12(1): 4390.
[24]Zhou, Chaobiao; Pu, Tianyao; Huang, Jing; Fan, Menghui; Huang, Lujun*.Manipulating Optical Scattering of Quasi-BIC in Dielectric Metasurface with Off-Center Hole.Nanomaterials, 2021, 12(1): 54.
[23]J. Y. Lee, L. Huang, L. Xu, A. E Miroshnichenko, R. Lee, “Broadband control on evens with interferometric coherent waves”, New Journal of Physics 23, 063014(2021)
[22]Huang, Lujun; Xu, Lei; Rahmani, Mohsen; Neshev, Dragomir N.; Miroshnichenko, Andrey. E*.Pushing the limit of high-Q mode of a single dielectric nanocavity.Advanced Photonics, 2021, 3(1): 016004.
[21]As’ham, Khalil; Al-Ani, Ibrahim; Huang, Lujun*; Miroshnichenko, Andrey E.; Hattori, Haroldo T.Boosting Strong Coupling in a Hybrid WSe2 Monolayer-Anapole-Plasmon System.ACS Photonics, 2021, 8(2): 489-496.
[20]K. Ou+, F. Yu+, G. Li*, W. Wang, A. E. Miroshnichenko*, L. Huang, P. Wang, T. Li, Z. Li, X. Chen*, W. Lu, “Mid-infrared polarization-controlled broadband achromatic metadevices”, Sci. Adv. 6, eabc0711(2020)
[19]I. Volkovskaya, L. Xu, L. Huang, A. I. Smirnov, A. E Miroshnichenko, D. A. Smirnova*, “Multipolar second-harmonic generation from high-Q quasi-BIC states in subwavelength resonators”, Nanophotonics 9, 3953(2020)
[18]Huang, Lujun; Xu, Lei; Woolley, Matt; Miroshnichenko, Andrey E.*.Trends in Quantum Nanophotonics.Advanced Quantum Technologies, 2020, 3(4): 1900126.
[17]L. Xu, M. Rahmani, Y. Ma, D. A. Smirnova, K. Z. Kamali, F. Deng, Y. K. Chiang, L. Huang, H. Zhang, S. Gould, D. N. Neshev, A. E. Miroshnichenko*, “Enhanced ligh-matter interactions in dielectric nanostructures via machine learning approache”, Adv. Photonics 2, 026003 (2020) (Selected as best paper of AP in 2021)
[16]Y. Yu, T. Minhaj, L. Huang, Y. Yu, L. Cao*, “In-plane and interfacial thermal conduction of two-dimensional transition metal-dichalcogenides”, Phys. Rev. Appl. 13, 034059(2020)
[15]L. Xu, G. Saerens, M. Timofeeva, D. A. Smirnova, I. Volkovskaya, M. Lysevych, R. Camacho-Morales, M. Cai, K. Z. Kamali, L. Huang, F. Karouta, H. H. Tan, C. Jagadish, A. E. Miroshnichenko*, R. Grange*, D. N. Neshev*, M. Rahmani, “Foward and backward switching of nonlinear unidirectional emission from GaAs nanoantennnas”, ACS Nano 14, 1379(2019)
[14]Xu, Lei; Zangeneh Kamali, Khosro; Huang, Lujun; Rahmani, Mohsen; Smirnov, Alexander; Camacho-Morales, Rocio; Ma, Yixuan; Zhang, Guoquan; Woolley, Matt; Neshev, Dragomir; Miroshnichenko, Andrey E.*.Dynamic Nonlinear Image Tuning through Magnetic Dipole Quasi-BIC Ultrathin Resonators.ADVANCED SCIENCE, 2019, 6(15): 1802119.
[13]K. Ullah, M. Habib, L. Huang, B. Garcia-Camara, “Analysis of the substrate effect on the zero-backward scattering condition of a Cu2O nanoparticle under non-normal illumination”, Nanomaterials 9, 536(2019)
[12]Ullah, Kaleem*; Huang, Lujun; Habib, Muhammad; Liu, Xuefeng.Engineering the optical properties of dielectric nanospheres by resonant modes.Nanotechnology, 2018, 29(50): 505204.
[11]Y. Yu, G. Li, L. Huang, A. Barrette, Y. Q. Cai, Y. Yu, K. Gundogdu, Y. W. Zhang, L. Cao*, “Enhancing multifunctionality of transition-metal dichalcogenides via caption intercalation”, ACS Nano 11, 9390(2017)
[10]Yu, Yiling; Yu, Yifei; Huang, Lujun; Peng, Haowei; Xiong, Liwei; Cao, Linyou*.Giant Gating Tunability of Optical Refractive Index in Transition Metal Dichalcogenide Monolayers.Nano Letters, 2017, 17(6): 3613-3618.
[9]Huang, Lujun; Li, Guoqing; Gurarslan, Alper; Yu, Yiling; Kirste, Ronny; Guo, Wei; Zhao, Junjie; Collazo, Ramon; Sitar, Zlatko; Parsons, Gregory N.; Kudenov, Michael; Cao, Linyou*.Atomically Thin MoS2 Narrowband and Broadband Light Superabsorbers.ACS Nano, 2016, 10(8): 7493-7499.
[8]Y. Yu+, S. Hu+, L. Su+, L. Huang, Y. Liu, Z. Jin, A. A. Purezky, D. B. Geohegan, K. W. Kim, Y. Zhang, L. Cao* , “Equally efficient interlayer exciton relaxation and improved absorption in epitaxial and nonepitaxial MoS2/WS2 heterostructures”, Nano. Letts 15, 486 (2015)
[7]Huang, Lujun; Yu, Yiling; Cao, Linyou*.General Modal Properties of Optical Resonances in Subwavelength Nonspherical Dielectric Structures.Nano Letters, 2013, 13(8): 3559-3565.
[6]L. Huang, X. Chen*. B. Ni, G. Li, X. Wang, Z. Li, W. Lu, “ A general transformation for compact waveguide coupler by using homogeneous media”, Photonics. Nanostruct-Fund. Appl 11, 115(2013)
[5]L. Huang, X. Chen*, B. Ni, G. Li, Z. Li, W. Lu, “Design of highly directive antenna made ofhomogeneous media”, J. Opt. Soc.Ame. B. 29, 3150(2012) (IF=2.106)
[4]L. Huang, Z. Wang, S. Zhou, G. Li, B. Ni, X. Wang, Z. Li, X. Chen*, W. Lu,“A novel design for high gain lens antenna with homogeneous media”, Photonics. Nanostruct-Fund. Appl 10, 615(2012)
[3]L. Huang, D. Zhou, J. Wang, Z. Li, X. Chen*, W. Lu, “Scattering characteristics of nonmagnetic invisibility cloak with minimized scattering ”,Opt. Commun 284, 5523(2011)
[2]L. Huang, D. Zhou, J. Wang, G. Li, Z. Li, X. Chen*, W. Lu,“Ageneralized transformation to convert an arbitrary perfect conductor into another arbitrary dielectric object”, J. Phys. D:Appl Phys, 44, 235102(2011)
[1]L. Huang, D. Zhou, J. Wang, Z. Li, X. Chen*, W. Lu, “Generalized transformation for nonmagnetic invisibility cloak with minimized scattering”, J. Opt. Soc.Ame.B, 28, 922(2011)
荣誉及奖励
2012年中科院院长优秀奖
2016年国家海外自费留学生奖学金
2022年华东师范大学紫江青年学者
2022年上海市浦江人才计划
2022年上海市****
2023年国家海外高层次青年人才。
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