Ma Cuiping, Yu Peng, Wang Wenhao, Zhu Yisong, Lin Feng, Wang Jiaying, Jing Zhimin, Kong Xiang-Tian, Li Peihang, Govorov Alexander O, Liu Dong, Xu Hongxing, Wang Zhiming
Institute of Fundamental and Frontier Science, University of Electronic Science and Technology of China, Chengdu 610054, China.
College of Optoelectronic Technology, Chengdu University of Information Technology, Chengdu 610225, China.
ACS Nano. 2021 Oct 26;15(10):16357-16367. doi: 10.1021/acsnano.1c05658. Epub 2021 Sep 21.
Plasmonic metasurfaces with the photothermal effect have been increasingly investigated for optofluidics. Meanwhile, along with the expanding application of circularly polarized light, a growing number of investigations on chiral plasmonic metasurfaces have been conducted. However, few studies have explored the chirality and the thermal-induced convection of such systems simultaneously. This paper aims to theoretically investigate the dynamics of the thermally induced fluid convection of a chiral plasmonic metasurface. The proposed metasurface exhibits giant circular dichroism in absorption and thus leads to a strong photothermal effect. On the basis of the multiphysical analysis, including optics, thermodynamics, and hydrodynamics, we propose a concept of chiral spectroscopy termed optofluidic circular dichroism. Our results show that different fluid velocities of thermally induced convection appear around a chiral plasmonic metasurface under different circularly polarized excitation. The chiral fluid convection is induced by an asymmetric heat distribution generated by absorbed photons in the plasmonic heater. This concept can be potentially used to induce chiral fluid convection utilizing the chiral photothermal effect. Our proposed structure can potentially be used in various optofluidics applications related to biochemistry, clinical biology, and so on.
具有光热效应的等离子体超表面在光流体学领域受到了越来越多的研究。与此同时,随着圆偏振光应用的不断拓展,对手性等离子体超表面的研究也日益增多。然而,很少有研究同时探讨此类系统的手性和热致对流现象。本文旨在从理论上研究手性等离子体超表面热致流体对流的动力学特性。所提出的超表面在吸收方面表现出巨大的圆二色性,从而产生强烈的光热效应。基于光学、热力学和流体动力学的多物理场分析,我们提出了一种名为光流体圆二色性的手性光谱概念。我们的结果表明,在不同的圆偏振激发下,手性等离子体超表面周围会出现不同流体速度的热致对流。手性流体对流是由等离子体加热器中吸收光子产生的不对称热分布所引发的。这一概念有望用于利用手性光热效应诱导手性流体对流。我们所提出的结构有望应用于与生物化学、临床生物学等相关的各种光流体学应用中。