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生物微腔激光器中的受激手性光物质相互作用。

Stimulated Chiral Light-Matter Interactions in Biological Microlasers.

机构信息

School of Electrical and Electronic Engineering, Nanyang Technological University, 50 Nanyang Avenue, 639798 Singapore.

Centre for Disruptive Photonic Technologies, TPI and SPMS, Nanyang Technological University, 21 Nanyang Link, 637371 Singapore.

出版信息

ACS Nano. 2021 May 25;15(5):8965-8975. doi: 10.1021/acsnano.1c01805. Epub 2021 May 14.

Abstract

Chiral light-matter interactions have emerged as a promising area in biophysics and quantum optics. Great progress in enhancing chiral light-matter interactions have been investigated through passive resonators or spontaneous emission. Nevertheless, the interaction between chiral biomolecules and stimulated emission remains unexplored. Here we introduce the concept of a biological chiral laser by amplifying chiral light-matter interactions in an active resonator through stimulated emission process. Green fluorescent proteins or chiral biomolecules encapsulated in Fabry-Perot microcavity served as the gain material while excited by either left-handed or right-handed circularly polarized pump laser. Owing to the nonlinear pump energy dependence of stimulated emission, significant enhancement of chiral light-matter interactions was demonstrated. Detailed experiments and theory revealed that a lasing dissymmetry factor is determined by molecular absorption dissymmetry factor at its excitation wavelength. Finally, chirality transfer was investigated under a stimulated emission process through resonance energy transfer. Our findings elucidate the mechanism of stimulated chiral light-matter interactions, providing better understanding of light-matter interaction in biophysics, chiral sensing, and quantum biophotonics.

摘要

手性光物质相互作用在生物物理和量子光学领域已经成为一个很有前途的研究方向。通过被动谐振器或自发辐射,人们在增强手性光物质相互作用方面取得了很大的进展。然而,手性生物分子与受激辐射之间的相互作用仍未得到探索。在这里,我们通过受激辐射过程在有源谐振器中放大手性光物质相互作用,引入了生物手性激光的概念。绿色荧光蛋白或手性生物分子封装在法布里-珀罗微腔中作为增益材料,同时受到左旋或右旋圆偏振泵浦激光的激发。由于受激辐射的泵浦能量的非线性依赖性,手性光物质相互作用得到了显著增强。详细的实验和理论表明,激光不对称因子由其激发波长处的分子吸收不对称因子决定。最后,通过共振能量转移研究了受激发射过程中的手性转移。我们的研究结果阐明了受激手性光物质相互作用的机制,为生物物理、手性传感和量子生物光子学中光物质相互作用提供了更好的理解。

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