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纳米结构中的超强光场:从亚衍射极限光学到传感与能量转换

Extraordinary optical fields in nanostructures: from sub-diffraction-limited optics to sensing and energy conversion.

作者信息

Luo Xiangang, Tsai Dinping, Gu Min, Hong Minghui

机构信息

State Key Laboratory of Optical Technologies on Nano-Fabrication and Micro-Engineering, Institute of Optics and Electronics, Chinese Academy of Sciences, Chengdu, 610209, China.

出版信息

Chem Soc Rev. 2019 Apr 15;48(8):2458-2494. doi: 10.1039/c8cs00864g.

Abstract

Along with the rapid development of micro/nanofabrication technology, the past few decades have seen the flourishing emergence of subwavelength-structured materials and interfaces for optical field engineering at the nanoscale. Three remarkable properties associated with these subwavelength-structured materials are the squeezed optical fields beyond the diffraction limit, gradient optical fields in the subwavelength scale, and enhanced optical fields that are orders of magnitude greater than the incident field. These engineered optical fields have inspired fundamental and practical advances in both engineering optics and modern chemistry. The first property is the basis of sub-diffraction-limited imaging, lithography, and dense data storage. The second property has led to the emergence of a couple of thin and planar functional optical devices with a reduced footprint. The third one causes enhanced radiation (e.g., fluorescence), scattering (e.g., Raman scattering), and absorption (e.g., infrared absorption and circular dichroism), offering a unique platform for single-molecule-level biochemical sensing, and high-efficiency chemical reaction and energy conversion. In this review, we summarize recent advances in subwavelength-structured materials that bear extraordinary squeezed, gradient, and enhanced optical fields, with a particular emphasis on their optical and chemical applications. Finally, challenges and outlooks in this promising field are discussed.

摘要

随着微纳制造技术的飞速发展,在过去几十年中,用于纳米尺度光场工程的亚波长结构材料和界面蓬勃涌现。与这些亚波长结构材料相关的三个显著特性是超越衍射极限的压缩光场、亚波长尺度的梯度光场以及比入射场大几个数量级的增强光场。这些经过设计的光场推动了工程光学和现代化学在基础研究和实际应用方面的进步。第一个特性是亚衍射极限成像、光刻和密集数据存储的基础。第二个特性催生了一些占地面积更小的薄型平面功能光学器件。第三个特性导致辐射(如荧光)、散射(如拉曼散射)和吸收(如红外吸收和圆二色性)增强,为单分子水平的生化传感以及高效化学反应和能量转换提供了一个独特的平台。在这篇综述中,我们总结了具有非凡压缩、梯度和增强光场的亚波长结构材料的最新进展,特别强调了它们在光学和化学方面的应用。最后,讨论了这个充满前景的领域所面临的挑战和未来展望。

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