Chiral light–matter interactions in solution-processable semiconductors

IF 38.1 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Nature reviews. Chemistry Pub Date : 2025-02-17 DOI:10.1038/s41570-025-00690-x
Zachary A. VanOrman, Winald R. Kitzmann, Antti-Pekka M. Reponen, Tejas Deshpande, Huygen J. Jöbsis, Sascha Feldmann
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Abstract

Chirality is a fundamental property widely observed in nature, arising in objects without a proper rotation axis, therefore existing as forms with distinct handedness. This characteristic can profoundly impact the properties of materials and can enable new functionality, especially for spin-optoelectronics. Chirality enables asymmetric light and spin interactions in materials, with widespread potential applications ranging from energy-efficient displays, holography, imaging, and spin-selective and enantio-selective chemistry to quantum information technologies. This Review focuses on the emerging material class of solution-processable chiral semiconductors, a broad material class comprising organic, inorganic and hybrid materials. These exciting materials offer the opportunity to design desirable light–matter interactions based on symmetry rules, potentially enabling the simultaneous control of light, charge and spin. We briefly discuss the various types of solution-processible chiral semiconductors, including small molecules, polymers, supramolecular self-assemblies and halide perovskites. We then examine the interplay between chirality and spin in these materials, the various mechanisms of chiral light–matter interactions, and techniques utilized to characterize them. We conclude with current and future applications of chiral semiconductors that take advantage of their chiral light–matter interactions.

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手性是自然界中广泛存在的一种基本特性,它产生于没有适当旋转轴的物体,因此以具有不同手性的形式存在。这一特性会对材料的特性产生深远影响,并能实现新的功能,尤其是在自旋光电子学方面。手性使材料中的光和自旋相互作用不对称,具有广泛的潜在应用,从节能显示、全息摄影、成像、自旋选择性和对映选择性化学到量子信息技术。本综述重点关注溶液可加工手性半导体这一新兴材料类别,该材料类别包括有机、无机和混合材料。这些令人兴奋的材料为根据对称规则设计理想的光物质相互作用提供了机会,有可能实现对光、电荷和自旋的同时控制。我们简要讨论了各种类型的溶液可加工手性半导体,包括小分子、聚合物、超分子自组装和卤化物包晶。然后,我们将研究这些材料中手性与自旋之间的相互作用、手性光-物质相互作用的各种机制以及用于表征它们的技术。最后,我们将介绍利用手性光物质相互作用的手性半导体的当前和未来应用。
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来源期刊
Nature reviews. Chemistry
Nature reviews. Chemistry Chemical Engineering-General Chemical Engineering
CiteScore
52.80
自引率
0.80%
发文量
88
期刊介绍: Nature Reviews Chemistry is an online-only journal that publishes Reviews, Perspectives, and Comments on various disciplines within chemistry. The Reviews aim to offer balanced and objective analyses of selected topics, providing clear descriptions of relevant scientific literature. The content is designed to be accessible to recent graduates in any chemistry-related discipline while also offering insights for principal investigators and industry-based research scientists. Additionally, Reviews should provide the authors' perspectives on future directions and opinions regarding the major challenges faced by researchers in the field.
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