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Compressed few-layer black phosphorus nanosheets from semiconducting to metallic transition with the highest symmetry

机译:压缩few-layer黑磷nanosheets从半导体到金属过渡最高的对称

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The high-pressure response of few-layer black phosphorus (BP) nanosheets remains elusive, despite the special interest in it particularly after the achievement of an exotic few-layer BP based field effect transistor. Here, we identified a pressure-induced reversible phase transition on few-layer BP nanosheets by performing in situ ADXRD and Raman spectroscopy with the assistance of DAC apparatus. The few-layer BP nanosheets transformed from orthorhombic semiconductors to simple cubic metal with increasing pressure, which is well interpreted using the pressure-induced inverse Peierls distortion. The obtained simple cubic BP nanosheets exhibited an enhanced isothermal bulk modulus of 147.0(2) GPa, and negative Gruneisen parameters that were attributed to the pressure-driven softening of phonon energies. Note that the simple cubic BP nanosheets adopted the highest symmetry which is in stark contrast to the general phase transformation under high pressure. First-principles calculations indicated that the metallic BP was significantly related to the band overlapped metallization, resulting from the traversing of density of states across the Fermi level at high pressure. Such findings paved a potential pathway to design targeted BP nanostructures with functional properties at extremes, and opened up possibilities for conceptually new devices.
机译:的高压反应few-layer黑色磷(BP) nanosheets仍然是难以捉摸的,尽管它特别的特殊利益在外来few-layer BP的成就基于场效应晶体管。确定了pressure-induced可逆阶段在few-layer BP nanosheets过渡进行原位ADXRD和拉曼光谱的协助下DAC装置。few-layer BP nanosheets转换斜方晶系的半导体简单立方金属越来越大的压力,这是很好解释使用pressure-induced逆佩尔斯失真。nanosheets展出一个增强的等温体积147.0 (2) GPa,模量和负格吕奈森由于参数的驱使的软化声子能量。注意,简单立方BP nanosheets采纳最高的对称形成鲜明对比一般相位变换下高压力。金属BP显著相关乐队重叠金属化,造成遍历的态密度费米能级在高压力。一个潜在的通道设计有针对性的英国石油公司纳米结构与功能性质极端,和开放的可能性概念上新设备。

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