等离子体子
手性(物理)
材料科学
等离子纳米粒子
分子
化学物理
纳米颗粒
纳米结构
放松(心理学)
纳米技术
偶极子
光谱学
分子构象
拉曼光学活性
圆二色性
变形(气象学)
胶体金
原位
光电子学
化学
离散偶极子近似
作者
Ziwei Zhou,Ningwei Sun,Nina Tverdokhleb,Artur Movsesyan,Anja Maria Steiner,Patrick T. Probst,Vaibhav Gupta,Bo Yin,Nicolás Pazos-Peréz,Ramón A. Álvarez‐Puebla,Mirjam Taube,Martin Müller,Holger Merlitz,Olga Guskova,Yaroslava G. Yingling,Franziska Lissel,Tobias A. F. König,Zhiming Wang,Alexander O. Govorov,Nicholas A. Kotov
标识
DOI:10.1038/s41563-026-02586-7
摘要
Chiral molecules in nature usually show optical activity only in the deep ultraviolet, whereas artificial chiral plasmonic nanostructures can generate much stronger responses at visible and near-infrared wavelengths. An important challenge is whether the abundant biomolecular chirality in nature can be directly transferred to achiral plasmonic systems without elaborate three-dimensional nanofabrication. Here we show that the mechanical stretching of protein molecules anchored within achiral gold nanoparticle assemblies strongly enhances and reversibly modulates plasmon-coupled circular dichroism. Stretching amplifies the chiroptical response to an ellipticity of 1.18° and a dissymmetry factor of 0.2, far exceeding conventional hotspot-based strategies. Repeated stretching and relaxation further enable reversible switching over more than 100 cycles. Simulations and in situ spectroscopy indicate that the deformation of protein changes its conformation and dipole alignment, thereby strengthening the plasmonic chiral response. These findings establish a route to achieve dynamically controllable chiroptical activity in achiral plasmonic assemblies, revealing how small biomolecular deformations can strongly influence plasmonic responses of much larger nanostructures.
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