论文标题
高熵范德华材料(评论文章)
High entropy van der Waals materials (Review article)
论文作者
论文摘要
通过打破对传统合金策略的限制,高熵概念促进了对相空间中心区域的探索,从而扩大了合金开发的地平线。这篇评论重点介绍了高熵概念和范德华系统的婚姻,形成了新的材料类别,即高熵范德华材料(HEX,HE =高熵,x =阴离子簇),并描述当前的问题和下一个挑战。 The design strategy for HEX has integrated the local feature (e.g., composition, spin, and valence states) of structural units in high entropy materials and the holistic degrees of freedom (e.g., stacking, twisting, and intercalating species) in van der Waals materials, and has been successfully employed for the discovery of high entropy dichalcogenides, phosphorus tri-chalcogenides, halogens, and MXene.在几乎规范的2D晶格上,多种金属成分的丰富组合和随机分布产生了一个灵活的平台,以研究一系列选定的物理特性背后的相关特征,例如超导性,磁性和金属制剂过渡。结构单元及其堆叠构型的故意设计也可以创建新型的催化剂,以增强其在一系列化学反应中的性能。
By breaking the restrictions on traditional alloying strategy, the high entropy concept has promoted the exploration of the central area of phase space, thus broadening the horizon of alloy exploitation. This review highlights the marriage of the high entropy concept and van der Waals systems to form a new family of materials category, namely the high entropy van der Waals materials (HEX, HE = high entropy, X= anion clusters) and describe the current issues and next challenges. The design strategy for HEX has integrated the local feature (e.g., composition, spin, and valence states) of structural units in high entropy materials and the holistic degrees of freedom (e.g., stacking, twisting, and intercalating species) in van der Waals materials, and has been successfully employed for the discovery of high entropy dichalcogenides, phosphorus tri-chalcogenides, halogens, and MXene. The rich combination and random distribution of the multiple metallic constituents on the nearly-regular 2D lattice give rise to a flexible platform to study the correlation features behind a range of selected physical properties, e.g., superconductivity, magnetism, and metal-insulator transition. The deliberate design of structural units and their stacking configuration can also create novel catalysts to enhance their performance in a bunch of chemical reactions.