Chiral plasmonics and enhanced chiral light-matter interactions

被引:0
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作者
Wei Du
Xinglin Wen
Davy Gérard
Cheng-Wei Qiu
Qihua Xiong
机构
[1] Nanyang Technological University,Division of Physics and Applied Physics, School of Physical and Mathematical Sciences
[2] Huazhong University of Science and Technology,School of Optical and Electronic Information
[3] Université de Technologie de Troyes,Light, Nanomaterials, Nanotechnologies (L2n), Institut Charles Delaunay, CNRS
[4] National University of Singapore,Department of Electrical and Computer Engineering
[5] Université Côte d’Azur,MajuLab, International Joint Research Unit UMI 3654, CNRS
[6] Sorbonne Université,NOVITAS, Nanoelectronics Center of Excellence, School of Electrical and Electronic Engineering
[7] National University of Singapore,undefined
[8] Nanyang Technological University,undefined
[9] Nanyang Technological University,undefined
关键词
chirality; chiral plasmonics; chiral light-matter interactions; sensing;
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摘要
Chirality, which describes the broken mirror symmetry in geometric structures, exists macroscopically in our daily life as well as microscopically down to molecular levels. Correspondingly, chiral molecules interact differently with circularly polarized light exhibiting opposite handedness (left-handed and right-handed). However, the interaction between chiral molecules and chiral light is very weak. In contrast, artificial chiral plasmonic structures can generate “super-chiral” plasmonic near-field, leading to enhanced chiral light-matter (or chiroptical) interactions. The “super-chiral” near-field presents different amplitude and phase under opposite handedness incidence, which can be utilized to engineer linear and nonlinear chiroptical interactions. Specifically, in the interaction between quantum emitters and chiral plasmonic structures, the chiral hot spots can favour the emission with a specific handedness. This article reviews the state-of-the-art research on the design, fabrication and chiroptical response of different chiral plasmonic nanostructures or metasurfaces. This review also discusses enhanced chiral light-matter interactions that are essential for applications like chirality sensing, chiral selective light emitting and harvesting. In the final part, the review ends with a perspective on future directions of chiral plasmonics.
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