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通过对实验已知化合物进行高通量计算剥离得到的二维材料。

Two-dimensional materials from high-throughput computational exfoliation of experimentally known compounds.

作者信息

Mounet Nicolas, Gibertini Marco, Schwaller Philippe, Campi Davide, Merkys Andrius, Marrazzo Antimo, Sohier Thibault, Castelli Ivano Eligio, Cepellotti Andrea, Pizzi Giovanni, Marzari Nicola

机构信息

Theory and Simulation of Materials (THEOS) and National Centre for Computational Design and Discovery of Novel Materials (MARVEL), École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland.

Vilnius University Institute of Biotechnology, Vilnius, Lithuania.

出版信息

Nat Nanotechnol. 2018 Mar;13(3):246-252. doi: 10.1038/s41565-017-0035-5. Epub 2018 Feb 6.

Abstract

Two-dimensional (2D) materials have emerged as promising candidates for next-generation electronic and optoelectronic applications. Yet, only a few dozen 2D materials have been successfully synthesized or exfoliated. Here, we search for 2D materials that can be easily exfoliated from their parent compounds. Starting from 108,423 unique, experimentally known 3D compounds, we identify a subset of 5,619 compounds that appear layered according to robust geometric and bonding criteria. High-throughput calculations using van der Waals density functional theory, validated against experimental structural data and calculated random phase approximation binding energies, further allowed the identification of 1,825 compounds that are either easily or potentially exfoliable. In particular, the subset of 1,036 easily exfoliable cases provides novel structural prototypes and simple ternary compounds as well as a large portfolio of materials to search from for optimal properties. For a subset of 258 compounds, we explore vibrational, electronic, magnetic and topological properties, identifying 56 ferromagnetic and antiferromagnetic systems, including half-metals and half-semiconductors.

摘要

二维(2D)材料已成为下一代电子和光电子应用的有前途的候选材料。然而,只有几十种二维材料已成功合成或剥离。在这里,我们寻找可以从其母体化合物中轻松剥离的二维材料。从108423种独特的、实验已知的三维化合物开始,我们根据强大的几何和键合标准确定了5619种呈现层状的化合物子集。使用范德华密度泛函理论进行的高通量计算,结合实验结构数据和计算的随机相位近似结合能进行验证,进一步确定了1825种易于或潜在可剥离的化合物。特别是,1036个易于剥离的案例子集提供了新颖的结构原型和简单的三元化合物,以及大量可供搜索最佳性能的材料组合。对于258种化合物的一个子集,我们探索了振动、电子、磁性和拓扑性质,确定了56个铁磁和反铁磁系统,包括半金属和半半导体。

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