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光的超散射:基础与应用

Superscattering of light: fundamentals and applications.

作者信息

Wang Chan, Chen Xuhuinan, Gong Zheng, Chen Ruoxi, Hu Hao, Wang Huaping, Yang Yi, Tony Low, Zhang Baile, Chen Hongsheng, Lin Xiao

机构信息

State Key Laboratory of Extreme Photonics and Instrumentation, College of Information Science & Electronic Engineering, Zhejiang University, Hangzhou 310027, People's Republic of China.

Key Laboratory of Advanced Micro/Nano Electronic Devices & Smart Systems of Zhejiang, Jinhua Institute of Zhejiang University, Zhejiang University, Jinhua 321099, People's Republic of China.

出版信息

Rep Prog Phys. 2024 Nov 18;87(12). doi: 10.1088/1361-6633/ad8eda.

Abstract

Superscattering, theoretically predicted in 2010 and experimentally observed in 2019, is an exotic scattering phenomenon of light from subwavelength nanostructures. In principle, superscattering allows for an arbitrarily large total scattering cross section, due to the degenerate resonance of eigenmodes or channels. Consequently, the total scattering cross section of a superscatterer can be significantly enhanced, far exceeding the so-called single-channel limit. Superscattering offers a unique avenue for enhancing light-matter interactions and can enable numerous practical applications, ranging from sensing, light trapping, bioimaging, and communications to optoelectronics. This paper provides a comprehensive review of the recent progress and developments in the superscattering of light, with a specific focus on elucidating its theoretical origins, experimental observations, and manipulations. Moreover, we offer an outlook on future research directions in superscattering, including potential realizations of directional superscattering, scattering-free plasmonic superscattering, enhancement of free-electron radiation and the Purcell effect via superscatterers, inelastic superscattering, and superscattering of non-electromagnetic waves.

摘要

超散射现象于2010年得到理论预测,并于2019年被实验观测到,它是一种来自亚波长纳米结构的奇特光散射现象。原则上,由于本征模或通道的简并共振,超散射允许有任意大的总散射截面。因此,超散射体的总散射截面可以显著增强,远远超过所谓的单通道极限。超散射为增强光与物质的相互作用提供了一条独特途径,并能实现众多实际应用,从传感、光捕获、生物成像、通信到光电子学。本文全面综述了光超散射的最新进展和发展情况,特别着重于阐明其理论起源、实验观测和操控方法。此外,我们还展望了超散射未来的研究方向,包括定向超散射的潜在实现、无散射等离子体超散射、通过超散射体增强自由电子辐射和珀塞尔效应、非弹性超散射以及非电磁波的超散射。

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