周期性无机固体的结构手性和相关特性:回顾与展望

Eric Bousquet, Mauro Fava, Zachary Romestan, Fernando Gómez-Ortiz, Emma E. McCabe, Aldo H. Romero
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引用次数: 0

摘要

手性指的是物体的不对称性,不能叠加在其镜像上。这一概念存在于各个科学领域,并具有深远的影响。虽然手性在生物学、化学和药理学中可能得到了最广泛的认可,但最近在手性声子、拓扑系统、晶体对映材料和磁性手性材料方面取得的进展也将这一主题带到了凝聚态物理学研究的前沿。我们的综述讨论了无机材料中与结构手性相关的对称性要求和特征。这使我们能够探索这些体系中相变的性质、阶次参数之间的耦合及其对材料物理性质的影响。我们重点介绍了该领域的重要贡献,尤其是手性声子、反向磁性和磁旋性等方面的最新研究进展。尽管天然存在的无机手性晶体非常罕见,但这篇综述也凸显了巨大的知识差距,提出了结构手性主要在基础层面上面临的挑战和机遇,例如手性位移相变和手性,通过外部手段(电场、磁场或应变场)调整和切换结构手性的可能性,手性是否可以成为一个独立的阶次参数,以及结构手性是否可以量化等。除了简单总结这一领域的研究之外,本综述还希望通过解决未来的挑战、鼓励对手性进行超越传统界限的探索以及寻求开发具有卓越或新特性的创新材料,来激发材料科学的进一步研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structural chirality and related properties in the periodic inorganic solids: Review and perspectives
Chirality refers to the asymmetry of objects that cannot be superimposed on their mirror image. It is a concept that exists in various scientific fields and has profound consequences. Although these are perhaps most widely recognized within biology, chemistry, and pharmacology, recent advances in chiral phonons, topological systems, crystal enantiomorphic materials, and magneto-chiral materials have brought this topic to the forefront of condensed matter physics research. Our review discusses the symmetry requirements and the features associated with structural chirality in inorganic materials. This allows us to explore the nature of phase transitions in these systems, the coupling between order parameters, and their impact on the material's physical properties. We highlight essential contributions to the field, particularly recent progress in the study of chiral phonons, altermagnetism, magnetochirality between others. Despite the rarity of naturally occurring inorganic chiral crystals, this review also highlights a significant knowledge gap, presenting challenges and opportunities for structural chirality mostly at the fundamental level, e.g., chiral displacive phase transitions and ferrochirality, possibilities of tuning and switching structural chirality by external means (electric, magnetic, or strain fields), whether chirality could be an independent order parameter, and whether structural chirality could be quantified, etc. Beyond simply summarising this field of research, this review aims to inspire further research in materials science by addressing future challenges, encouraging the exploration of chirality beyond traditional boundaries, and seeking the development of innovative materials with superior or new properties.
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