当等离子体胶体遇到光涡旋-简要回顾

G. P. Kumar
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引用次数: 1

摘要

结构光已经成为在微米和亚微米尺度上研究和操纵物质的重要工具。结构光的一种形式是光学涡旋光束。这些涡旋的螺旋波前携带轨道角动量,可以传递给布朗胶体。当胶体由金属纳米结构(如银和金)制成时,共振光学效应起着至关重要的作用,这种相互作用导致了复杂的动力学和组装。本文简要介绍了近年来用光学涡旋及其晶格捕获等离子体胶体的研究进展。光散射和吸收的作用对潜在的力和扭矩有重要的影响,这是特别阐明的。光学涡旋中自旋和轨道角动量的影响会导致自旋-轨道耦合动力学,这些影响通过文献中的例子来强调。除了组装和动力学外,还讨论了涡旋晶格影响下等离子体胶体的增强布朗运动。强调了理解光学涡旋和等离子体胶体之间相互作用的教学方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
When Plasmonic Colloids Meet Optical Vortices - A Brief Review
Structured light has emerged as an important tool to interrogate and manipulate matter at micron and sub-micron scale. One form of structured light is an optical vortex beam. The helical wavefront of these vortices carry orbital angular momentum which can be transferred to a Brownian colloid. When the colloid is made of metallic nanostructures, such as silver and gold, resonant optical effects play a vital role, and the interaction leads to complex dynamics and assembly. This brief review aims to discuss some recent work on trapping plasmonic colloids with optical vortices and their lattices. The role of optical scattering and absorption has important implications on the underlying forces and torques, which is specifically enunciated. The effect of spin and orbital angular momentum in an optical vortex can lead to spin-orbit coupling dynamics, and these effects are highlighted with examples from the literature. In addition to assembly and dynamics, enhanced Brownian motion of plasmonic colloids under the influence of a vortex-lattice is discussed. The pedagogical aspects to understand the interaction between optical vortex and plasmonic colloids is emphasized.
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