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通过向卤化铅中引入手性过渡金属络合阳离子实现强磁圆二色效应。

Strong Magneto-Chiroptical Effects through Introducing Chiral Transition-Metal Complex Cations to Lead Halide.

作者信息

Lu Haolin, Qi Fenglian, Wang Hebin, He Tengfei, Sun Bing, Gao Xiaoqing, Comstock Andrew H, Gull Sehrish, Zhang Yunxin, Qiao Tianjiao, Shao Tianyin, Zheng You-Xuan, Sun Dali, Chen Yongsheng, Zhang Hao-Li, Tang Zhiyong, Long Guankui

机构信息

Tianjin Key Lab for Rare Earth Materials and Applications, Renewable Energy Conversion and Storage Center (RECAST), Smart Sensing Interdisciplinary Science Center, School of Materials Science and Engineering, National Institute for Advanced Materials, Nankai University, Tianjin, 300350, China.

Chinese Academy of Science (CAS) Key Laboratory of Nanosystem and Hierarchy Fabrication, CAS Center for Excellence in Nanoscience National Center for Nanoscience and Technology, Beijing, 100190, China.

出版信息

Angew Chem Int Ed Engl. 2025 Jan 15;64(3):e202415363. doi: 10.1002/anie.202415363. Epub 2024 Dec 12.

Abstract

The interplay between chirality with magnetism can break both the space and time inversion symmetry and have wide applications in information storage, photodetectors, multiferroics and spintronics. Herein, we report the chiral transition-metal complex cation-based lead halide, R-CDPB and S-CDPB. In contrast with the traditional chiral metal halides with organic cations, a novel strategy for chirality transfer from the transition-metal complex cation to the lead halide framework is developed. The chiral complex cations directly participate the band structure and introduce the d-d transitions and tunable magneto-chiroptical effects in both the ultraviolet and full visible range into R-CDPB and S-CDPB. Most importantly, the coupling between magnetic moment of the complex cation and chiroptical properties is confirmed by the magneto-chiral dichroism. For the band-edge transition, the unprecedented modulation of +514 % for S-CDPB and -474 % for R-CDPB was achieved at -1.3 Tesla. Our findings demonstrate a novel strategy to combine chirality with magnetic moment, and provide a versatile material platform towards magneto-chiroptical and chiro-spintronic applications.

摘要

手性与磁性之间的相互作用能够打破空间和时间反演对称性,在信息存储、光电探测器、多铁性材料和自旋电子学等领域有着广泛应用。在此,我们报道了基于手性过渡金属络合阳离子的卤化铅,即R-CDPB和S-CDPB。与传统的含有机阳离子的手性金属卤化物不同,我们开发了一种从过渡金属络合阳离子到手性卤化铅骨架的新型手性转移策略。手性络合阳离子直接参与能带结构,并将紫外和全可见光范围内的d-d跃迁及可调磁圆二色性效应引入R-CDPB和S-CDPB中。最重要的是,通过磁圆二色性证实了络合阳离子的磁矩与圆二色性性质之间的耦合。对于带边跃迁,在-1.3特斯拉时,S-CDPB实现了前所未有的+514%的调制,R-CDPB实现了-474%的调制。我们的研究结果展示了一种将手性与磁矩相结合的新策略,并为磁圆二色性和手性自旋电子学应用提供了一个多功能材料平台。

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