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基于DNA折纸增强型零模表面等离激元的非手性传感增强圆二色性

Enhanced Circular Dichroism for Achiral Sensing Based on a DNA-Origami-Empowered Anapole Metasurface.

作者信息

Li Chengfeng, He Tao, Yang Xu, Feng Chao, Zhang Zhanyi, Zhu Jingyuan, Dong Siyu, Shi Yuzhi, Wei Zeyong, Jiao Hongfei, Zhang Yinan, Liu Huajie, Wang Zhanshan, Cheng Xinbin

机构信息

Institute of Precision Optical Engineering, School of Physics Science and Engineering, Tongji University, Shanghai 200092, China.

MOE Key Laboratory of Advanced Micro-Structured Materials, Shanghai 200092, China.

出版信息

Nano Lett. 2024 Aug 7;24(31):9451-9458. doi: 10.1021/acs.nanolett.4c01735. Epub 2024 Jul 8.

Abstract

Circular dichroism (CD) spectroscopy has been extensively utilized for detecting and distinguishing the chirality of diverse substances and structures. However, CD spectroscopy is inherently weak and conventionally associated with chiral sensing, thus constraining its range of applications. Here, we report a DNA-origami-empowered metasurface sensing platform through the collaborative effect of metasurfaces and DNA origami, enabling achiral/slightly chiral sensing with high sensitivity via the enhanced ΔCD. An anapole metasurface, boasting over 60 times the average optical chirality enhancement, was elaborately designed to synergize with reconfigurable DNA origami. We experimentally demonstrated the detection of achiral/slightly chiral DNA linker strands via the enhanced ΔCD of the proposed platform, whose sensitivity was a 10-fold enhancement compared with the platform without metasurfaces. Our work presents a high-sensitivity platform for achiral/slightly chiral sensing through chiral spectroscopy, expanding the capabilities of chiral spectroscopy and inspiring the integration of multifunctional artificial nanostructures across diverse domains.

摘要

圆二色性(CD)光谱已被广泛用于检测和区分各种物质和结构的手性。然而,CD光谱本质上较弱,传统上与手性传感相关,因此限制了其应用范围。在此,我们通过超表面与DNA折纸的协同效应,报告了一种基于DNA折纸的超表面传感平台,通过增强的ΔCD实现高灵敏度的非手性/轻微手性传感。精心设计了一种平均光学手性增强超过60倍的零阶超表面,以与可重构的DNA折纸协同作用。我们通过所提出平台增强的ΔCD实验证明了对非手性/轻微手性DNA连接链的检测,其灵敏度比没有超表面的平台提高了10倍。我们的工作通过手性光谱展示了一个用于非手性/轻微手性传感的高灵敏度平台,扩展了手性光谱的能力,并激发了多功能人工纳米结构在不同领域的整合。

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