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关联电子材料的表面/界面化学工程:从导电固体、相变到外场响应

Surface/Interface Chemistry Engineering of Correlated-Electron Materials: From Conducting Solids, Phase Transitions to External-Field Response.

作者信息

Li Zejun, Wu Qiran, Wu Changzheng

机构信息

Hefei National Laboratory for Physical Sciences at the Microscale CAS center for Excellence in Nanoscience and CAS Key Laboratory of Mechanical Behavior and Design of Materials University of Science and Technology of China Hefei Anhui 230026 PR China.

出版信息

Adv Sci (Weinh). 2021 Jan 5;8(4):2002807. doi: 10.1002/advs.202002807. eCollection 2021 Feb.

Abstract

Correlated electronic materials (CEMs) with strong electron-electron interactions are often associated with exotic properties, such as metal-insulator transition (MIT), charge density wave (CDW), superconductivity, and magnetoresistance (MR), which are fundamental to next generation condensed matter research and electronic devices. When the dimension of CEMs decreases, exposing extremely high specific surface area and enhancing electronic correlation, the surface states are equally important to the bulk phase. Therefore, surface/interface chemical interactions provide an alternative route to regulate the intrinsic properties of low-dimensional CEMs. Here, recent achievements in surface/interface chemistry engineering of low-dimensional CEMs are reviewed, using surface modification, molecule-solid interaction, and interface electronic coupling, toward modulation of conducting solids, phase transitions including MIT, CDW, superconductivity, and magnetism transition, as well as external-field response. Surface/interface chemistry engineering provides a promising strategy for exploring novel properties and functional applications in low-dimensional CEMs. Finally, the current challenge and outlook of the surface/interface engineering are also pointed out for future research development.

摘要

具有强电子-电子相互作用的关联电子材料(CEMs)通常与奇异特性相关联,如金属-绝缘体转变(MIT)、电荷密度波(CDW)、超导性和磁阻(MR),这些对于下一代凝聚态物质研究和电子器件至关重要。当CEMs的维度降低时,其比表面积极高且电子关联性增强,表面态对于体相同样重要。因此,表面/界面化学相互作用为调控低维CEMs的本征性质提供了一条替代途径。在此,综述了低维CEMs表面/界面化学工程的近期成果,包括利用表面修饰、分子-固体相互作用和界面电子耦合来调控导电固体、包括MIT、CDW、超导性和磁性转变在内的相变以及对外场的响应。表面/界面化学工程为探索低维CEMs的新特性和功能应用提供了一种有前景的策略。最后,还指出了表面/界面工程当前面临的挑战以及对未来研究发展的展望。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/350e/7887576/c8806f1f4d5a/ADVS-8-2002807-g001.jpg

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