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单层黑磷烯相变的应变和缺陷工程。

Strain and defect engineering on phase transition of monolayer black phosphorene.

机构信息

International Center for Applied Mechanics, State Key Laboratory for Strength and Vibration of Mechanical Structures, School of Aerospace, Xi'an Jiaotong University, Xi'an 710049, China.

出版信息

Phys Chem Chem Phys. 2018 Aug 29;20(34):21832-21843. doi: 10.1039/c8cp01334a.

Abstract

The phase transition of monolayer black phosphorene (MBP, α-P) to β-P and γ-P is explored by density functional theory (DFT) calculations and molecular dynamics (MD) simulations using reactive force fields. It is found that MBP can convert to a mixed phase of β-P and γ-P under biaxial strain, while the Stone-Wales defect (SW-2) in MBP can serve as an excellent 'phase transition catalyzer', significantly decreasing the critical strain for phase transition and increasing the homogeneity of the phase transition. The biaxial strain state (i.e. the strain components in the armchair and zigzag direction) and loading mode (i.e. the proportional and staged loading) have significant effects on the phase transition of MBP. In general, the phase transition of MBP is driven by the tension strain in the armchair direction, but large tension or compression strain in the zigzag direction can also promote the phase transition. Besides, MBP has a larger fracture strain under staged loading, generating a more uniform phase transition structure. The effects of curvature and SW-2 defect concentration on the phase transition of MBP are also studied, which shows an easier phase transition for a larger curvature and higher SW-2 defect concentration. The systematic results presented herein provide useful insights for designing and tuning the structure of MBP through phase transition facilitated by strain and defect engineering.

摘要

通过密度泛函理论(DFT)计算和使用反应力场的分子动力学(MD)模拟,研究了单层黑磷烯(MBP,α-P)向β-P 和 γ-P 的相转变。研究发现,MBP 在双轴应变下可以转化为β-P 和 γ-P 的混合相,而 MBP 中的 Stone-Wales 缺陷(SW-2)可以作为一种出色的“相转变催化剂”,显著降低相转变的临界应变并提高相转变的均匀性。双轴应变状态(即沿扶手椅和锯齿方向的应变分量)和加载模式(即比例和分级加载)对 MBP 的相转变有显著影响。一般来说,MBP 的相转变由沿扶手椅方向的拉伸应变驱动,但较大的锯齿方向的拉伸或压缩应变也可以促进相转变。此外,MBP 在分级加载下具有更大的断裂应变,产生更均匀的相转变结构。还研究了曲率和 SW-2 缺陷浓度对 MBP 相转变的影响,结果表明曲率较大和 SW-2 缺陷浓度较高时相转变更容易发生。本文的系统研究结果为通过应变和缺陷工程促进的相转变来设计和调整 MBP 的结构提供了有用的见解。

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