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强耦合 regime 中非手性激子材料的可重构手性。

Reconfigurable chirality with achiral excitonic materials in the strong-coupling regime.

机构信息

Center for Nano Optics, University of Southern Denmark, Campusvej 55, DK-5230 Odense M, Denmark.

Department of Digital Systems, University of Piraeus, GR-18534, Piraeus, Greece.

出版信息

Nanoscale. 2022 Dec 8;14(47):17581-17588. doi: 10.1039/d2nr05063c.

Abstract

We introduce and theoretically analyze the concept of manipulating optical chirality strong coupling of the optical modes of chiral nanostructures with excitonic transitions in molecular layers or semiconductors. With chirality being omnipresent in chemistry and biomedicine, and highly desirable for technological applications related to efficient light manipulation, the design of nanophotonic architectures that sense the handedness of molecules or generate the desired light polarization in an externally controllable manner is of major interdisciplinary importance. Here we propose that such capabilities can be provided by the mode splitting resulting from polaritonic hybridization. Starting with an object with well-known chiroptical response-here, for a proof of concept, a chiral sphere-we show that strong coupling with a nearby excitonic material generates two spectral branches that retain the object's high chirality density, which manifest most clearly through anticrossings in circular-dichroism or differential-scattering dispersion diagrams. These windows can be controlled by the intrinsic properties of the excitonic layer and the strength of the interaction, enabling thus the post-fabrication manipulation of optical chirality. Our findings are further verified simulations of circular dichroism of a realistic chiral architecture, namely a helical assembly of plasmonic nanospheres embedded in a resonant matrix.

摘要

我们介绍并从理论上分析了操纵光学手性的概念,即手性纳米结构的光学模式与分子层或半导体中的激子跃迁之间的强耦合。由于手性在化学和生物医学中无处不在,并且在手性在与高效光操纵相关的技术应用中非常理想,因此设计能够感知分子手性或以外界可控方式产生所需偏振光的纳米光子结构具有重要的交叉学科意义。在这里,我们提出这种能力可以通过极化激元杂化产生的模式分裂来提供。从具有已知手征响应的物体开始 - 在这里,作为概念验证,一个手性球体 - 我们表明,与附近的激子材料的强耦合会产生两个保留物体高手征密度的光谱分支,这在手征圆二色性或差分散射色散图中的交叉最为明显。这些窗口可以通过激子层的固有特性和相互作用的强度来控制,从而实现光学手性的后制造操纵。我们的发现还通过对现实手性结构(即嵌入在共振矩阵中的等离子体纳米球的螺旋组装)的圆二色性的模拟得到了进一步验证。

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