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紫磷中的压力驱动多晶型转变、突发绝缘体-金属转变及光电导开关效应

Pressure-Driven Polymorphic Transition, Emergent Insulator-To-Metal Transition, and Photoconductivity Switching in Violet Phosphorus.

作者信息

Li Chen, Liu Ke, Jiang Dequan, Yan Huacai, Chen En, Ma Yingying, Cheng Haoming, Wen Ting, Yue Binbin, Wang Yonggang

机构信息

School of Materials Science and Engineering, Peking University, Beijing, 100871, China.

Center for High Pressure Science and Technology Advanced Research (HPSTAR), Beijing, 100193, China.

出版信息

Small. 2024 Mar;20(9):e2306758. doi: 10.1002/smll.202306758. Epub 2023 Oct 18.

Abstract

Polymorphic phase transition is an essential phenomenon in condensed matter that the physical properties of materials may undergo significant changes due to the structural transformation. Phase transition has thus become an important means and dimension for regulating material properties. Herein, this study demonstrates the pressure-induced multi-transition of both structure and physical properties in violet phosphorus, a novel phosphorus allotrope. Under compression, violet phosphorus undergoes sequential polymorphic phase transitions. Concomitant with the first phase transition, violet phosphorus exhibits emergent insulator-metal transition, superconductivity, and dramatic switching from positive to negative photoconductivity. Remarkably, the resistance of violet phosphorus shows a sudden drop of around 10 along with the phase transition. In addition, piezochromism from translucent red to opaque black and suppression of photoluminescence are observed upon compression. Of particular interest is that the sample irreversibly transforms into black phosphorus with a pronounced discrepancy in physical properties from the pristine violet phosphorus after decompression. The abundant polymorphic transitions and property changes in violet phosphorus have significant implications for designing novel pressure-responsive electronic/optoelectronic devices and exploring concealed polymorphic transition materials.

摘要

多晶型相变是凝聚态物质中的一种重要现象,材料的物理性质可能会因结构转变而发生显著变化。因此,相变已成为调节材料性能的重要手段和维度。在此,本研究展示了新型磷同素异形体紫磷在压力作用下结构和物理性质的多重转变。在压缩过程中,紫磷经历了连续的多晶型相变。伴随着第一次相变,紫磷呈现出新兴的绝缘体-金属转变、超导性,以及从正光电导性到负光电导性的显著转变。值得注意的是,紫磷的电阻随着相变突然下降了约10倍。此外,压缩时观察到从半透明红色到不透明黑色的压致变色以及光致发光的抑制。特别有趣的是,减压后样品不可逆地转变为黑磷,其物理性质与原始紫磷有明显差异。紫磷中丰富的多晶型转变和性质变化对于设计新型压力响应电子/光电器件以及探索潜在的多晶型转变材料具有重要意义。

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