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具有用于多色光复用的动态旋光色散的双 chiral 纳米结构。

Bi-Chiral Nanostructures Featuring Dynamic Optical Rotatory Dispersion for Polychromatic Light Multiplexing.

作者信息

Liu Si-Jia, Zhu Lin, Zhang Yi-Heng, Chen Wen, Zhu Dong, Chen Peng, Lu Yan-Qing

机构信息

National Laboratory of Solid State Microstructures, Key Laboratory of Intelligent Optical Sensing and Manipulation, College of Engineering and Applied Sciences, and Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing, 210093, China.

出版信息

Adv Mater. 2023 Aug;35(33):e2301714. doi: 10.1002/adma.202301714. Epub 2023 Jun 29.

Abstract

Chiral nanostructures featuring the unique optical activity have attracted broad interests from scientists. The typical polarization rotation of transmitted light is usually wavelength dependent, namely the optical rotatory dispersion. However, its dynamic tunability and intriguing collaboration with other optical degrees of freedom, especially the highly desired spatial phase, remain elusive. Herein, a bi-chiral liquid crystalline nanostructure is proposed to induce an effect called reflective optical rotatory dispersion. Thanks to the independent manipulation of opposite-handed self-assembled helices, spin-decoupled geometric phases are induced simultaneously. These naturally unite multi-dimensions of light and versatile stimuli-responsiveness of soft matter. Dynamic holography driven by heat and electric field is demonstrated with a fast response. For polychromatic light, the hybrid multiplexed holographic painting is exhibited with fruitful tunable colors. This study extends the ingenious construction of soft chiral superstructures, presents an open-ended strategy for on-demand light control, and enlightens advanced applications of display, optical computing, and communication.

摘要

具有独特光学活性的手性纳米结构引起了科学家们的广泛关注。透射光的典型偏振旋转通常与波长有关,即旋光色散。然而,其动态可调性以及与其他光学自由度(特别是高度期望的空间相位)的有趣协同作用仍然难以捉摸。在此,提出了一种双手性液晶纳米结构以诱导一种称为反射旋光色散的效应。由于对相反手性自组装螺旋的独立操纵,同时诱导了自旋解耦几何相位。这些自然地将光的多维度与软物质的多功能刺激响应性结合在一起。通过热和电场驱动的动态全息术具有快速响应得到了证明。对于多色光,展示了具有丰富可调颜色的混合复用全息绘画。这项研究扩展了软手性超结构的巧妙构建,提出了一种按需光控制的开放式策略,并为显示、光学计算和通信等先进应用提供了启示。

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