Understanding Doping of Quantum Materials

IF 51.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Alex Zunger*, Oleksandr I. Malyi
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引用次数: 75

Abstract

Doping mobile carriers into ordinary semiconductors such as Si, GaAs, and ZnO was the enabling step in the electronic and optoelectronic revolutions. The recent emergence of a class of “quantum materials”, where uniquely quantum interactions between the components produce specific behaviors such as topological insulation, unusual magnetism, superconductivity, spin–orbit-induced and magnetically induced spin splitting, polaron formation, and transparency of electrical conductors, pointed attention to a range of doping-related phenomena associated with chemical classes that differ from the traditional semiconductors. These include wide-gap oxides, compounds containing open-shell d electrons, and compounds made of heavy elements yet having significant band gaps. The atomistic electronic structure theory of doping that has been developed over the past two decades in the subfield of semiconductor physics has recently been extended and applied to quantum materials. The present review focuses on explaining the main concepts needed for a basic understanding of the doping phenomenology and indeed peculiarities in quantum materials from the perspective of condensed matter theory, with the hope of forging bridges to the chemists that have enabled the synthesis of some of the most interesting compounds in this field.

Abstract Image

理解量子材料的掺杂
将移动载流子掺杂到普通半导体中,如Si, GaAs和ZnO,是电子和光电子革命的使能步骤。最近出现了一类“量子材料”,其中组件之间独特的量子相互作用产生了特定的行为,如拓扑绝缘、不寻常的磁性、超导性、自旋轨道诱导和磁诱导自旋分裂、极化子形成和电导体的透明度,这引起了人们对与化学类别不同的一系列与掺杂相关的现象的关注。这些化合物包括宽间隙氧化物,含有开壳电子的化合物,以及由重元素制成但具有明显带隙的化合物。掺杂的原子电子结构理论在过去的二十年里在半导体物理的子领域发展起来,最近被扩展并应用到量子材料中。本文从凝聚态理论的角度出发,着重阐述了基本理解掺杂现象学和量子材料的特性所需要的主要概念,并希望为化学家们在这一领域合成一些最有趣的化合物搭建桥梁。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Chemical Reviews
Chemical Reviews 化学-化学综合
CiteScore
106.00
自引率
1.10%
发文量
278
审稿时长
4.3 months
期刊介绍: Chemical Reviews is a highly regarded and highest-ranked journal covering the general topic of chemistry. Its mission is to provide comprehensive, authoritative, critical, and readable reviews of important recent research in organic, inorganic, physical, analytical, theoretical, and biological chemistry. Since 1985, Chemical Reviews has also published periodic thematic issues that focus on a single theme or direction of emerging research.
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