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二维六方氮化硼中准全空间晶界的原子精确制造

Atomic-Precision Fabrication of Quasi-Full-Space Grain Boundaries in Two-Dimensional Hexagonal Boron Nitride.

作者信息

Ren Xibiao, Wang Xiaowei, Jin Chuanhong

机构信息

State Key Laboratory of Silicon Materials, School of Materials Science and Engineering , Zhejiang University , Hangzhou , Zhejiang 310027 , China.

出版信息

Nano Lett. 2019 Dec 11;19(12):8581-8589. doi: 10.1021/acs.nanolett.9b03114. Epub 2019 Nov 6.

Abstract

Precise control and in-depth understanding of the interfaces are crucial for the functionality-oriented material design with desired properties. Herein, via modifying the long-standing bicrystal strategy, we proposed a novel nanowelding approach to build up interfaces between two-dimensional (2D) materials with atomic precision. This method enabled us, for the first time, to experimentally achieve the quasi-full-parameter-space grain boundaries (GBs) in 2D hexagonal boron nitride (h-BN). It further helps us unravel the long-term controversy and confusion on the registry of GBs in h-BN, including (i) discriminate the relative contribution of the strain and chemical energy on the registry of GBs; (ii) identify a new dislocation core-Frank partial dislocation and four new antiphase boundaries; and (iii) confirm the universal GB faceting. Our work provides a new paradigm to the exploitation of structural-property correlation of interfaces in 2D materials.

摘要

对于具有所需性能的面向功能的材料设计而言,精确控制和深入理解界面至关重要。在此,通过改进长期存在的双晶策略,我们提出了一种新颖的纳米焊接方法,以原子精度构建二维(2D)材料之间的界面。该方法首次使我们能够在二维六方氮化硼(h-BN)中通过实验实现准全参数空间晶界(GBs)。它进一步帮助我们解开了长期以来关于h-BN中晶界配向的争议和困惑,包括:(i)区分应变和化学能对晶界配向的相对贡献;(ii)识别一种新的位错核心——弗兰克部分位错和四个新的反相界;以及(iii)确认普遍的晶界刻面。我们的工作为探索二维材料中界面的结构-性能相关性提供了一种新的范例。

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