Ma Wenda, Lu Junfeng, Wan Bensong, Peng Dengfeng, Xu Qian, Hu Guofeng, Peng Yiyao, Pan Caofeng, Wang Zhong Lin
CAS Center for Excellence in Nanoscience, Beijing Key Laboratory of Micro-Nano Energy and Sensor, Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences, Beijing, 100083, P. R. China.
School of Nanoscience and Technology, University of Chinese Academy of Sciences, Beijing, 100049, P. R. China.
Adv Mater. 2020 Feb;32(7):e1905795. doi: 10.1002/adma.201905795. Epub 2020 Jan 13.
Recently, piezoelectric characteristics have been a research focus for 2D materials because of their broad potential applications. Black phosphorus (BP) is a monoelemental 2D material predicted to be piezoelectric because of its highly directional properties and non-centrosymmetric lattice structure. However, piezoelectricity is hardly reported in monoelemental materials owing to their lack of ionic polarization, but piezoelectric generation is consistent with the non-centrosymmetric structure of BP. Theoretical calculations of phosphorene have explained the origin of piezoelectric polarization among P atoms. However, the disappearance of piezoelectricity in multilayer 2D material generally arises from the opposite orientations of adjacent atomic layers, whereas this effect is limited in BP lattices due to their spring-shaped space structure. Here, the existence of in-plane piezoelectricity is experimentally reported for multilayer BP along the armchair direction. Current-voltage measurements demonstrate a piezotronic effect in this orientation, and cyclic compression and release of BP flakes show an intrinsic current output as large as 4 pA under a compressive strain of -0.72%. The discovery of piezoelectricity in multilayer BP can lead to further understanding of this mechanism in monoelemental materials.
近年来,由于二维材料具有广泛的潜在应用,其压电特性一直是研究热点。黑磷(BP)是一种单元素二维材料,因其具有高度的方向性和非中心对称晶格结构而被预测具有压电性。然而,由于缺乏离子极化,单元素材料中几乎没有关于压电性的报道,但压电产生与BP的非中心对称结构是一致的。磷烯的理论计算解释了磷原子间压电极化的起源。然而,多层二维材料中压电性的消失通常源于相邻原子层的相反取向,而这种效应在BP晶格中由于其弹簧状空间结构而受到限制。在此,实验报道了多层BP沿扶手椅方向存在面内压电性。电流-电压测量表明在该取向上存在压控电子效应,BP薄片的循环压缩和释放显示在-0.72%的压缩应变下固有电流输出高达4 pA。多层BP中压电性的发现有助于进一步理解单元素材料中的这一机制。