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巨涡旋差分散射作为多尺度手性结构的单色探针。

Gigantic vortical differential scattering as a monochromatic probe for multiscale chiral structures.

机构信息

Chinese Academy of Sciences Key Laboratory of Mechanical Behavior and Design of Materials, Department of Precision Machinery and Precision Instrumentation, University of Science and Technology of China, 230027 Hefei, China.

Department of Electrical and Computer Engineering, National University of Singapore, 117583 Singapore, Singapore.

出版信息

Proc Natl Acad Sci U S A. 2021 Jan 12;118(2). doi: 10.1073/pnas.2020055118.

Abstract

Spin angular momentum of light is vital to investigate enantiomers characterized by circular dichroism (CD), widely adopted in biology, chemistry, and material science. However, to discriminate chiral materials with multiscale features, CD spectroscopy normally requires wavelength-swept laser sources as well as wavelength-specific optical accessories. Here, we experimentally demonstrate an orbital-angular-momentum-assisted approach to yield chiroptical signals with monochromatic light. The gigantic vortical differential scattering (VDS) of ∼120% is achieved on intrinsically chiral microstructures fabricated by femtosecond laser. The VDS measurements can robustly generate chiroptical properties on microstructures with varying geometric features (e.g., diameters and helical pitches) and detect chiral molecules with high sensitivity. This VDS scheme lays a paradigm-shift pavement toward efficiently chiroptical discrimination of multiscale chiral structures with photonic orbital angular momentum. It simplifies and complements the conventional CD spectroscopy, opening possibilities for measuring weak optical chirality, especially on mesoscale chiral architectures and macromolecules.

摘要

光的自旋角动量对于研究具有圆二色性(CD)的对映异构体至关重要,CD 在生物学、化学和材料科学中被广泛应用。然而,为了分辨具有多尺度特征的手性材料,CD 光谱通常需要波长扫描激光源以及波长特定的光学附件。在这里,我们通过实验演示了一种利用轨道角动量产生单色光手性信号的方法。在飞秒激光制造的本征手性微结构上实现了高达 120%的巨大涡旋差分散射(VDS)。VDS 测量可以在具有不同几何特征(例如直径和螺旋间距)的微结构上稳定地产生手性特性,并具有高灵敏度检测手性分子。这种 VDS 方案为利用光子轨道角动量高效地对手性多尺度结构进行手性区分铺平了道路,它简化并补充了传统的 CD 光谱学,为测量弱光学手性提供了可能性,特别是在手性介观结构和大分子上。

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