Simultaneous inverse design of materials and parameters of core-shell nanoparticle via deep-learning: Demonstration of dipole resonance engineering
暂无分享,去创建一个
Junsuk Rho | Sunae So | J. Rho | Sunae So | J. Mun | Jungho Mun
[1] M. Majewski,et al. Optical properties of metallic films for vertical-cavity optoelectronic devices. , 1998, Applied optics.
[2] M. K. Garbos,et al. Expansion of arbitrary electromagnetic fields in terms of vector spherical wave functions. , 2010, Optics express.
[3] D. Lynch,et al. Handbook of Optical Constants of Solids , 1985 .
[4] Tianhua Feng,et al. Ideal Magnetic Dipole Scattering. , 2017, Physical review letters.
[5] Michael Mrejen,et al. Plasmonic nanostructure design and characterization via Deep Learning , 2018, Light: Science & Applications.
[6] C. Qiu,et al. Electromagnetic Theory of Tunable SERS Manipulated with Spherical Anisotropy in Coated Nanoparticles , 2011 .
[7] J. Aizpurua,et al. Dielectric antennas--a suitable platform for controlling magnetic dipolar emission. , 2012, Optics express.
[8] Kar W. Yung,et al. An Analytic Solution for the Force Between Two Magnetic Dipoles , 1998 .
[9] David R. Smith,et al. Local Refractive Index Dependence of Plasmon Resonance Spectra from Individual Nanoparticles , 2003 .
[10] G. Fitzgerald,et al. 'I. , 2019, Australian journal of primary health.
[11] Cheng-Wei Qiu,et al. Influence of spherical anisotropy on the optical properties of plasmon resonant metallic nanoparticles , 2011 .
[12] T. H. Boyer,et al. The force on a magnetic dipole , 1988 .
[13] Yongmin Liu,et al. Deep-Learning-Enabled On-Demand Design of Chiral Metamaterials. , 2018, ACS nano.
[14] Guoxing Zheng,et al. Metasurface holograms reaching 80% efficiency. , 2015, Nature nanotechnology.
[15] F Moreno,et al. Magnetic and electric coherence in forward- and back-scattered electromagnetic waves by a single dielectric subwavelength sphere , 2012, Nature Communications.
[16] C. Lee Giles,et al. Electromagnetic scattering by magnetic spheres , 1983 .
[17] I. Brener,et al. Tailoring directional scattering through magnetic and electric resonances in subwavelength silicon nanodisks. , 2013, ACS nano.
[18] I. Brener,et al. High-efficiency light-wave control with all-dielectric optical Huygens' metasurfaces , 2014, 1405.5038.
[19] Aristide Dogariu,et al. Directional control of scattering by all-dielectric core-shell spheres. , 2015, Optics letters.
[20] Junsuk Rho,et al. Designing nanophotonic structures using conditional deep convolutional generative adversarial networks , 2019, Nanophotonics.
[21] B. Chichkov,et al. Demonstration of magnetic dipole resonances of dielectric nanospheres in the visible region. , 2012, Nano letters.
[22] Yuri S. Kivshar,et al. High‐Efficiency Dielectric Huygens’ Surfaces , 2015 .
[23] L. Vaidman. Torque and force on a magnetic dipole , 1990 .
[24] Andrea Alù,et al. Modifying magnetic dipole spontaneous emission with nanophotonic structures , 2017 .
[25] Y. Kivshar,et al. Multipolar interference effects in nanophotonics , 2016, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[26] W. Liu,et al. Toroidal dipole‐induced transparency in core–shell nanoparticles , 2014, Laser & Photonics Reviews.
[27] Wei Liu,et al. Broadband unidirectional scattering by magneto-electric core-shell nanoparticles. , 2012, ACS nano.
[28] Lukas Novotny,et al. Demonstration of zero optical backscattering from single nanoparticles. , 2012, Nano letters.
[29] Carsten Rockstuhl,et al. Theory of metasurface based perfect absorbers , 2017, 1711.08203.
[30] Stefan A. Maier,et al. Unidirectional light scattering with high efficiency at optical frequencies based on low-loss dielectric nanoantennas. , 2016, Nanoscale.
[31] Wei Liu,et al. Generalized Kerker effects in nanophotonics and meta-optics [Invited]. , 2017, Optics express.
[32] Chennupati Jagadish,et al. Dual-channel spontaneous emission of quantum dots in magnetic metamaterials , 2013, Nature Communications.
[33] Y. Wang,et al. Plasmon-induced transparency in metamaterials. , 2008, Physical review letters.
[34] Yan Li,et al. Broadband zero-backward and near-zero-forward scattering by metallo-dielectric core-shell nanoparticles , 2015, Scientific Reports.
[35] R. V. Van Duyne,et al. Localized surface plasmon resonance spectroscopy and sensing. , 2007, Annual review of physical chemistry.
[36] R. W. Christy,et al. Optical Constants of the Noble Metals , 1972 .
[37] C. Qiu,et al. Full-wave analysis of extraordinary backscattering by a layered plasmonic nanosphere , 2008 .
[38] Andrey E. Miroshnichenko,et al. Magnetic light , 2012, Scientific reports.
[39] Juan I. Larruquert,et al. Self-consistent optical constants of SiO 2 and Ta 2 O 5 films , 2016 .
[40] Adriana Szeghalmi,et al. Materials Pushing the Application Limits of Wire Grid Polarizers further into the Deep Ultraviolet Spectral Range , 2016, 1607.04866.
[41] Kyu-Tae Lee,et al. A Generative Model for Inverse Design of Metamaterials , 2018, Nano letters.
[42] Andrey E. Miroshnichenko,et al. Directional visible light scattering by silicon nanoparticles , 2012, Nature Communications.
[43] Tsuyoshi Murata,et al. {m , 1934, ACML.
[44] J. Pendry. A Chiral Route to Negative Refraction , 2004, Science.
[45] N. Bonod,et al. Purcell factor of spherical Mie resonators , 2015 .
[46] Yi Yang,et al. Nanophotonic particle simulation and inverse design using artificial neural networks , 2018, Science Advances.
[47] R. M. Sillero,et al. Metallo-dielectric core-shell nanospheres as building blocks for optical three-dimensional isotropic negative-index metamaterials , 2011 .
[48] Xiaofeng Zhu,et al. A novel matrix-similarity based loss function for joint regression and classification in AD diagnosis , 2014, NeuroImage.