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少层黑磷中可逆压力诱导的部分相变

Reversible Pressure-Induced Partial Phase Transition in Few-Layer Black Phosphorus.

作者信息

Kundu Anirban, Tristant Damien, Sheremetyeva Natalya, Yoshimura Anthony, Torres Dias Abraao, Hazra Kiran Shankar, Meunier Vincent, Puech Pascal

机构信息

Institute of Nano Science and Technology, Habitat Center, Sector 64, Phase 10, Mohali, Punjab 160062, India.

Centre d'Elaboration des Matériaux et d'Etudes Structurales (CEMES), UPR-8011 CNRS, Université de Toulouse, 31055 Toulouse, France.

出版信息

Nano Lett. 2020 Aug 12;20(8):5929-5935. doi: 10.1021/acs.nanolett.0c01784. Epub 2020 Jul 13.

Abstract

The experimental identification of structural transitions in layered black phosphorus (BP) under mechanical stress is essential to extend its application in microelectromechanical (MEMS) devices under harsh conditions. High-pressure Raman spectroscopic analysis of BP flakes suggests a transition pressure at ∼4.2 GPa, where the BP's crystal structure progressively transforms from an orthorhombic to a rhombohedral symmetry (blue phosphorus, bP). The phase transition has been identified by observing a transition from blueshift to redshift of the in-plane characteristic Raman modes (B and A) with increasing pressure. Recovery of the vibrational frequencies for all three characteristic Raman modes confirms the reversibility of the structural phase transition. First-principles calculations provide insight into the behavior of the Raman modes of BP under high pressure and reveal the mechanism responsible for the partial phase transition from BP to bP, corresponding to a metastable equilibrium state where both phases coexist.

摘要

在机械应力下对层状黑磷(BP)结构转变进行实验鉴定,对于扩展其在恶劣条件下的微机电系统(MEMS)器件中的应用至关重要。对BP薄片进行的高压拉曼光谱分析表明,在约4.2 GPa的转变压力下,BP的晶体结构逐渐从正交对称转变为菱面体对称(蓝磷,bP)。通过观察随着压力增加,面内特征拉曼模式(B和A)从蓝移到红移的转变,确定了该相变。所有三种特征拉曼模式的振动频率恢复证实了结构相变的可逆性。第一性原理计算深入了解了BP在高压下的拉曼模式行为,并揭示了导致从BP到bP部分相变的机制,这对应于两个相共存的亚稳平衡状态。

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