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Planar nonlinear metasurface optics and their applications.
Huang, Tianye; Zhao, Xiang; Zeng, Shuwen; Crunteanu, Aurelian; Shum, Perry Ping; Yu, Nanfang.
Afiliação
  • Huang T; School of Mechanical Engineering & Electronic Information, China University of Geosciences, Wuhan 430074, People's republic of China.
  • Zhao X; XLIM Research Institute, UMR 7252 CNRS/University of Limoges, France.
  • Zeng S; Wuhan National Library for Optoelectronics, Wuhan, 430074, People's republic of China.
  • Crunteanu A; School of Mechanical Engineering & Electronic Information, China University of Geosciences, Wuhan 430074, People's republic of China.
  • Shum PP; XLIM Research Institute, UMR 7252 CNRS/University of Limoges, France.
  • Yu N; Department of Applied Physics and Applied Mathematics, Columbia University, New York, United States of America.
Rep Prog Phys ; 83(12): 126101, 2020 Dec.
Article em En | MEDLINE | ID: mdl-33290268
ABSTRACT
Metasurfaces are artificial two-dimensional (2D) planar surfaces that consist of subwavelength 'meta-atoms' (i.e. metallic or dielectric nanostructures). They are known for their capability to achieve better and more efficient light control in comparison to their traditional optical counterparts. Abrupt and sharp changes in the electromagnetic properties can be induced by the metasurfaces rather than the conventional gradual accumulation that requires greater propagation distances. Based on this feature, planar optical components like mirrors, lenses, waveplates, isolators and even holograms with ultrasmall thicknesses have been developed. Most of the current metasurface studies have focused on tailoring the linear optical effects for applications such as cloaking, lens imaging and 3D holography. Recently, the use of metasurfaces to enhance nonlinear optical effects has attracted significant attention from the research community. Benefiting from the resulting efficient nonlinear optical processes, the fabrication of integrated all-optical nano-devices with peculiar functionalities including broadband frequency conversions and ultrafast optical switching will become achievable. Plasmonic excitation is one of the most effective approaches to increase nonlinear optical responses due to its induced strong local electromagnetic field enhancement. For instance, continuous phase control on the effective nonlinear polarizability of plasmonic metasurfaces has been demonstrated through spin-rotation light coupling. The phase of the nonlinear polarization can be continuously tuned by spatially changing the meta-atoms' orientations during second and third harmonic generation processes, while the nonlinear metasurfaces also exhibit homogeneous linear properties. In addition, an ultrahigh second-order nonlinear susceptibility of up to 104 pm V-1 has recently been reported by coupling the plasmonic modes of patterned metallic arrays with intersubband transition of multi-quantum-well layered substrate. In order to develop ultra-planar nonlinear plasmonic metasurfaces, 2D materials such as graphene and transition metal dichalcogenides (TMDCs) have been extensively studied based on their unique nonlinear optical properties. The third-order nonlinear coefficient of graphene is five times that of gold substrate, while TMDC materials also exhibit a strong second-order magnetic susceptibility. In this review, we first focus on the main principles of planar nonlinear plasmonics based on metasurfaces and 2D nonlinear materials. The advantages and challenges of incorporating 2D nonlinear materials into metasurfaces are discussed, followed by their potential applications including orbital angular momentum manipulating and quantum optics.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Rep Prog Phys Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Idioma: En Revista: Rep Prog Phys Ano de publicação: 2020 Tipo de documento: Article