Electromagnetic Metamaterials: From Classical to Quantum

[1]  T. Cui,et al.  Intelligent metasurfaces: control, communication and computing , 2022, eLight.

[2]  T. Cui,et al.  A programmable diffractive deep neural network based on a digital-coding metasurface array , 2022, Nature Electronics.

[3]  Zi Wang,et al.  Integrated photonic metasystem for image classifications at telecommunication wavelength , 2021, Nature Communications.

[4]  Jing Feng,et al.  Linked Weyl surfaces and Weyl arcs in photonic metamaterials , 2021, Science.

[5]  Tie Jun Cui,et al.  Space-Time-Coding Digital Metasurfaces: Principles and Applications , 2021, Research.

[6]  T. Cui,et al.  Non-Hermitian Skin Effect in a Non-Hermitian Electrical Circuit , 2021, Research.

[7]  Ming Zheng Chen,et al.  A wireless communication scheme based on space- and frequency-division multiplexing using digital metasurfaces , 2021 .

[8]  Peng Jin,et al.  Diffractive Deep Neural Networks at Visible Wavelengths , 2021 .

[9]  Yuang Wang,et al.  A non-unitary metasurface enables continuous control of quantum photon–photon interactions from bosonic to fermionic , 2021, Nature Photonics.

[10]  T. Cui,et al.  Reprogrammable plasmonic topological insulators with ultrafast control , 2020, Nature Communications.

[11]  Qionghai Dai,et al.  Large-scale neuromorphic optoelectronic computing with a reconfigurable diffractive processing unit , 2020, Nature Photonics.

[12]  Zhaowei Liu,et al.  Metasurface enabled quantum edge detection , 2020, Science advances.

[13]  Tie Jun Cui,et al.  Representing Quantum Information with Digital Coding Metasurfaces , 2020, Advanced science.

[14]  T. Cui,et al.  Octupole corner state in a three-dimensional topological circuit , 2020, Light, science & applications.

[15]  Qiang Cheng,et al.  Information Metamaterial Systems , 2020, iScience.

[16]  C. H. Chu,et al.  Metalens-array–based high-dimensional and multiphoton quantum source , 2020, Science.

[17]  Aydogan Ozcan,et al.  Misalignment resilient diffractive optical networks , 2020, ArXiv.

[18]  T. Cui,et al.  Smart sensing metasurface with self-defined functions in dual polarizations , 2020 .

[19]  Jian Xu,et al.  Performing optical logic operations by a diffractive neural network , 2020, Light: Science & Applications.

[20]  Yan-qing Lu,et al.  Photonic Entanglement Based on Nonlinear Metamaterials , 2020, Laser & Photonics Reviews.

[21]  Lian Shen,et al.  Deep-learning-enabled self-adaptive microwave cloak without human intervention , 2020 .

[22]  Qian Ma,et al.  Information Metamaterials: bridging the physical world and digital world , 2020, PhotoniX.

[23]  Tie Jun Cui,et al.  Intelligent Electromagnetic Sensing with Learnable Data Acquisition and Processing , 2019, Patterns.

[24]  Y. Chong,et al.  Nonlinear topological photonics , 2019, Applied Physics Reviews.

[25]  N. Panoiu,et al.  Four-wave mixing of topological edge plasmons in graphene metasurfaces , 2019, Science Advances.

[26]  S. Yelin,et al.  Quantum metasurfaces with atom arrays , 2019, Nature Physics.

[27]  Qian Ma,et al.  Smart metasurface with self-adaptively reprogrammable functions , 2019, Light: Science & Applications.

[28]  Qian Ma,et al.  Intelligent metasurface imager and recognizer , 2019, Light: Science & Applications.

[29]  Qiang Cheng,et al.  Breaking Reciprocity with Space‐Time‐Coding Digital Metasurfaces , 2019, Advanced materials.

[30]  T. Zentgraf,et al.  Metasurface interferometry toward quantum sensors , 2019, Light: Science & Applications.

[31]  Shuguang Yuan,et al.  Advancing Drug Discovery via Artificial Intelligence. , 2019, Trends in pharmacological sciences.

[32]  I. Staude,et al.  Light-emitting metasurfaces , 2019, Nanophotonics.

[33]  Wei Xu,et al.  Multichannel direct transmissions of near-field information , 2019, Light: Science & Applications.

[34]  Yongfeng Li,et al.  Deep Learning: A Rapid and Efficient Route to Automatic Metasurface Design , 2019, Advanced science.

[35]  Qiang Cheng,et al.  Wireless Communications through a Simplified Architecture Based on Time‐Domain Digital Coding Metasurface , 2019, Advanced Materials Technologies.

[36]  T. Cui,et al.  Topologically Protected Edge State in Two-Dimensional Su–Schrieffer–Heeger Circuit , 2019, Research.

[37]  T. Cui,et al.  Direct Transmission of Digital Message via Programmable Coding Metasurface , 2019, Research.

[38]  Shi Jin,et al.  Programmable time-domain digital-coding metasurface for non-linear harmonic manipulation and new wireless communication systems , 2018, National science review.

[39]  X. Wan,et al.  Space-time-coding digital metasurfaces , 2018, 2019 Thirteenth International Congress on Artificial Materials for Novel Wave Phenomena (Metamaterials).

[40]  Jianwen Dong,et al.  A silicon-on-insulator slab for topological valley transport , 2018, Nature Communications.

[41]  Masahito Ueda,et al.  Topological unification of time-reversal and particle-hole symmetries in non-Hermitian physics , 2018, Nature Communications.

[42]  Xiang Wan,et al.  Machine‐Learning Designs of Anisotropic Digital Coding Metasurfaces , 2018, Advanced Theory and Simulations.

[43]  Natalia M. Litchinitser,et al.  Robust topologically protected transport in photonic crystals at telecommunication wavelengths , 2018, Nature Nanotechnology.

[44]  Rui Yu,et al.  Nodal Manifolds Bounded by Exceptional Points on Non-Hermitian Honeycomb Lattices and Electrical-Circuit Realizations , 2018, 1810.09231.

[45]  Erez Hasman,et al.  Quantum entanglement of the spin and orbital angular momentum of photons using metamaterials , 2018, Science.

[46]  Ling Lu Topology on a breadboard , 2018, Nature Physics.

[47]  W. Heidrich,et al.  Hybrid optical-electronic convolutional neural networks with optimized diffractive optics for image classification , 2018, Scientific Reports.

[48]  Tie Jun Cui,et al.  Transmission‐Reflection‐Integrated Multifunctional Coding Metasurface for Full‐Space Controls of Electromagnetic Waves , 2018, Advanced Functional Materials.

[49]  Yi Luo,et al.  All-optical machine learning using diffractive deep neural networks , 2018, Science.

[50]  Yuri S. Kivshar,et al.  Quantum metasurface for multiphoton interference and state reconstruction , 2018, Science.

[51]  Yuemin Bian,et al.  Deep Learning for Drug Design: an Artificial Intelligence Paradigm for Drug Discovery in the Big Data Era , 2018, The AAPS Journal.

[52]  A. Hibbins,et al.  Experimental observation of photonic nodal line degeneracies in metacrystals , 2018, Nature Communications.

[53]  Yuanjiang Xiang,et al.  Ideal Weyl points and helicoid surface states in artificial photonic crystal structures , 2018, Science.

[54]  Andrea Alù,et al.  Self-induced topological protection in nonlinear circuit arrays , 2018 .

[55]  O. Painter,et al.  Superconducting metamaterials for waveguide quantum electrodynamics , 2018, Nature Communications.

[56]  Gaurav Bahl,et al.  A quantized microwave quadrupole insulator with topologically protected corner states , 2017, Nature.

[57]  Ching Hua Lee,et al.  Topolectrical Circuits , 2017, Communications Physics.

[58]  E. Il'ichev,et al.  Magnetically induced transparency of a quantum metamaterial composed of twin flux qubits , 2018, Nature Communications.

[59]  N. Engheta,et al.  The rise of near-zero-index technologies , 2017, Science.

[60]  Gennady Shvets,et al.  Two-dimensional topological photonics , 2017, Nature Photonics.

[61]  Y. Wang,et al.  Metasurface-Mediated Quantum Entanglement , 2017 .

[62]  N. Engheta,et al.  Young’s Double-Slit, Invisible Objects and the Role of Noise in an Optical Epsilon-near-Zero Experiment , 2017, 1710.01395.

[63]  Rui Xia,et al.  Design of ultrahigh refractive index metamaterials in the terahertz regime , 2017 .

[64]  X. Wan,et al.  Electromagnetic reprogrammable coding-metasurface holograms , 2017, Nature Communications.

[65]  Shuangchun Wen,et al.  Dielectric metasurfaces for quantum weak measurements , 2017 .

[66]  Fang Liu,et al.  Integrated Cherenkov radiation emitter eliminating the electron velocity threshold , 2017, Nature Photonics.

[67]  Igor Aharonovich,et al.  Deterministic Coupling of Quantum Emitters in 2D Materials to Plasmonic Nanocavity Arrays. , 2017, Nano letters.

[68]  Weijia Wen,et al.  Direct observation of valley-polarized topological edge states in designer surface plasmon crystals , 2017, Nature Communications.

[69]  Yuan Wang,et al.  Valley photonic crystals for control of spin and topology. , 2017, Nature materials.

[70]  Y. Gong,et al.  Observation of the reversed Cherenkov radiation , 2017, Nature Communications.

[71]  Zhengyou Liu,et al.  Coding Acoustic Metasurfaces , 2017, Advanced materials.

[72]  Wladimir A. Benalcazar,et al.  Quantized electric multipole insulators , 2016, Science.

[73]  Robert R. Thomson,et al.  Experimental observation of anomalous topological edge modes in a slowly driven photonic lattice , 2016, Nature Communications.

[74]  Shuo Liu,et al.  Information entropy of coding metasurface , 2016, Light: Science & Applications.

[75]  Camille Jouvaud,et al.  Robust reconfigurable electromagnetic pathways within a photonic topological insulator. , 2016, Nature materials.

[76]  Xiao-ping Liu,et al.  Photonic topological insulator with broken time-reversal symmetry , 2016, Proceedings of the National Academy of Sciences.

[77]  Xiang Wan,et al.  Transmission-Type 2-Bit Programmable Metasurface for Single-Sensor and Single-Frequency Microwave Imaging , 2016, Scientific Reports.

[78]  Y. Meng,et al.  Tailorable Zero‐Phase Delay of Subwavelength Particles toward Miniaturized Wave Manipulation Devices , 2015, Advanced materials.

[79]  Qiang Cheng,et al.  Broadband diffusion of terahertz waves by multi-bit coding metasurfaces , 2015, Light: Science & Applications.

[80]  Michael S. Bernstein,et al.  ImageNet Large Scale Visual Recognition Challenge , 2014, International Journal of Computer Vision.

[81]  T. Cui,et al.  A single metamaterial plate as bandpass filter, transparent wall, and polarization converter controlled by polarizations , 2014 .

[82]  Qiang Cheng,et al.  Coding metamaterials, digital metamaterials and programmable metamaterials , 2014, Light: Science & Applications.

[83]  Nader Engheta,et al.  Digital metamaterials. , 2014, Nature materials.

[84]  Z. J. Wang,et al.  Discovery of a Three-Dimensional Topological Dirac Semimetal, Na3Bi , 2013, Science.

[85]  H. Meyer,et al.  Implementation of a quantum metamaterial using superconducting qubits , 2013, Nature Communications.

[86]  J. Valentine,et al.  Realization of an all-dielectric zero-index optical metamaterial , 2013, Nature Photonics.

[87]  D. R. Chowdhury,et al.  Terahertz Metamaterials for Linear Polarization Conversion and Anomalous Refraction , 2013, Science.

[88]  S. Ornes Metamaterials , 2013, Proceedings of the National Academy of Sciences.

[89]  Felix Dreisow,et al.  Photonic Floquet topological insulators , 2012, Nature.

[90]  Liang Fu,et al.  Weyl points and line nodes in gyroid photonic crystals , 2012, Nature Photonics.

[91]  Zongfu Yu,et al.  Realizing effective magnetic field for photons by controlling the phase of dynamic modulation , 2012, Nature Photonics.

[92]  N. Zheludev,et al.  Flux Exclusion Superconducting Quantum Metamaterial: Towards Quantum-level Switching , 2012, Scientific Reports.

[93]  Gennady Shvets,et al.  Photonic topological insulators. , 2012, Nature materials.

[94]  N. Zheludev,et al.  From metamaterials to metadevices. , 2012, Nature materials.

[95]  Mohammad Hafezi,et al.  Robust optical delay lines with topological protection , 2011, 1102.3256.

[96]  T. Cui,et al.  Three-dimensional broadband and broad-angle transformation-optics lens. , 2010, Nature communications.

[97]  Jinxin Fu,et al.  Robust one-way modes in gyromagnetic photonic crystal waveguides with different interfaces , 2010 .

[98]  T. Cui,et al.  Three-dimensional broadband ground-plane cloak made of metamaterials , 2010, Nature communications.

[99]  Nikolay I Zheludev,et al.  The Road Ahead for Metamaterials , 2010, Science.

[100]  Zheng Wang,et al.  Observation of unidirectional backscattering-immune topological electromagnetic states , 2009, Nature.

[101]  David R. Smith,et al.  Broadband Ground-Plane Cloak , 2009, Science.

[102]  Zhaowei Liu,et al.  Far-Field Optical Hyperlens Magnifying Sub-Diffraction-Limited Objects , 2007, Science.

[103]  David R. Smith,et al.  Metamaterial Electromagnetic Cloak at Microwave Frequencies , 2006, Science.

[104]  N. Fang,et al.  Sub–Diffraction-Limited Optical Imaging with a Silver Superlens , 2005, Science.

[105]  M. Wegener,et al.  Magnetic Response of Metamaterials at 100 Terahertz , 2004, Science.

[106]  Willie J Padilla,et al.  Terahertz Magnetic Response from Artificial Materials , 2004, Science.

[107]  J. P. Woerdman,et al.  Plasmon-assisted transmission of entangled photons , 2002, Nature.

[108]  J. Pendry,et al.  Magnetism from conductors and enhanced nonlinear phenomena , 1999 .

[109]  Sergei A. Tretyakov,et al.  Modeling effective properties of chiral composites , 1996 .