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通过机器人人工智能引导系统对手性功能薄膜进行逆向设计。

Inverse design of chiral functional films by a robotic AI-guided system.

作者信息

Xie Yifan, Feng Shuo, Deng Linxiao, Cai Aoran, Gan Liyu, Jiang Zifan, Yang Peng, Ye Guilin, Liu Zaiqing, Wen Li, Zhu Qing, Zhang Wanjun, Zhang Zhanpeng, Li Jiahe, Feng Zeyu, Zhang Chutian, Du Wenjie, Xu Lixin, Jiang Jun, Chen Xin, Zou Gang

机构信息

Key Laboratory of Precision and Intelligent Chemistry, School of Chemistry and Materials Science, University of Science and Technology of China, Hefei, Anhui, China.

State Key Laboratory of Particle Detection and Electronics, Department of Optics and Optical Engineering, University of Science and Technology of China, Hefei, Anhui, China.

出版信息

Nat Commun. 2023 Oct 4;14(1):6177. doi: 10.1038/s41467-023-41951-x.

Abstract

Artificial chiral materials and nanostructures with strong and tuneable chiroptical activities, including sign, magnitude, and wavelength distribution, are useful owing to their potential applications in chiral sensing, enantioselective catalysis, and chiroptical devices. Thus, the inverse design and customized manufacturing of these materials is highly desirable. Here, we use an artificial intelligence (AI) guided robotic chemist to accurately predict chiroptical activities from the experimental absorption spectra and structure/process parameters, and generate chiral films with targeted chiroptical activities across the full visible spectrum. The robotic AI-chemist carries out the entire process, including chiral film construction, characterization, and testing. A machine learned reverse design model using spectrum embedded descriptors is developed to predict optimal structure/process parameters for any targeted chiroptical property. A series of chiral films with a dissymmetry factor as high as 1.9 (g ~ 1.9) are identified out of more than 100 million possible structures, and their feasible application in circular polarization-selective color filters for multiplex laser display and switchable circularly polarized (CP) luminescence is demonstrated. Our findings not only provide chiral films with the highest reported chiroptical activity, but also have great fundamental value for the inverse design of chiroptical materials.

摘要

具有强且可调节的手性光学活性(包括符号、大小和波长分布)的人工手性材料和纳米结构,因其在手性传感、对映选择性催化和手性光学器件中的潜在应用而具有重要价值。因此,对这些材料进行逆向设计和定制制造是非常必要的。在此,我们使用人工智能(AI)引导的机器人化学家,根据实验吸收光谱以及结构/工艺参数准确预测手性光学活性,并生成在整个可见光谱范围内具有目标手性光学活性的手性薄膜。机器人AI化学家执行整个过程,包括手性薄膜的构建、表征和测试。利用嵌入光谱描述符开发了一种机器学习逆向设计模型,以预测任何目标手性光学性质的最佳结构/工艺参数。在超过1亿种可能的结构中筛选出一系列不对称因子高达1.9(g ~ 1.9)的手性薄膜,并展示了它们在用于多路复用激光显示的圆偏振选择性滤光片和可切换圆偏振(CP)发光方面的可行应用。我们的研究结果不仅提供了具有报道中最高手性光学活性的手性薄膜,而且对手性光学材料的逆向设计具有重要的基础价值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/754b/10551020/fadfea8b8f13/41467_2023_41951_Fig1_HTML.jpg

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