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手性光子的纳米塑形

Nano-shaping of chiral photons.

作者信息

Sunaba Yuji, Ide Masaki, Takei Ryo, Sakai Kyosuke, Pin Christophe, Sasaki Keiji

机构信息

Research Institute for Electronic Science, Hokkaido University, Sapporo, Hokkaido, Japan.

出版信息

Nanophotonics. 2023 May 16;12(13):2499-2506. doi: 10.1515/nanoph-2022-0779. eCollection 2023 Jun.

Abstract

Localized surface plasmon polaritons can confine the optical field to a single-nanometer-scale area, strongly enhancing the interaction between photons and molecules. Theoretically, the ultimate enhancement might be achieved by reducing the "photon size" to the molecular extinction cross-section. In addition, desired control of electronic transitions in molecules can be realized if the "photon shape" can be manipulated on a single-nanometer scale. By matching the photon shape with that of the molecular electron wavefunction, optically forbidden transitions can be induced efficiently and selectively, enabling various unconventional photoreactions. Here, we demonstrate the possibility of forming single-nanometer-scale, highly intense fields of optical vortices using designed plasmonic nanostructures. The orbital and spin angular momenta provided by a Laguerre-Gaussian beam are selectively transferred to the localized plasmons of a metal multimer structure and then confined into a nanogap. This plasmonic nano-vortex field is expected to fit the molecular electron orbital shape and spin with the corresponding angular momenta.

摘要

局域表面等离激元极化激元能够将光场限制在单个纳米尺度的区域内,极大地增强光子与分子之间的相互作用。从理论上讲,通过将“光子尺寸”减小到分子消光截面,或许可以实现最终的增强效果。此外,如果能够在单个纳米尺度上操控“光子形状”,那么就可以实现对分子中电子跃迁的理想控制。通过使光子形状与分子电子波函数的形状相匹配,能够高效且选择性地诱导光学禁戒跃迁,从而实现各种非常规的光化学反应。在此,我们展示了利用设计的等离子体纳米结构形成单纳米尺度、高强度光学涡旋场的可能性。拉盖尔 - 高斯光束所提供的轨道角动量和自旋角动量被选择性地转移到金属多聚体结构的局域等离子体中,然后被限制在一个纳米间隙内。这种等离子体纳米涡旋场有望使分子电子轨道形状和自旋与相应的角动量相匹配。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a78d/11502058/9db991b3fb9c/j_nanoph-2022-0779_fig_001.jpg

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