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Mechanical and electronic properties of monolayer and bilayer phosphorene under uniaxial and isotropic strains

机译:单轴和各向同性应变下单层和双层磷的机械和电子性能

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The mechanical and electronic properties of both the monolayer and bilayer phosphorenes under either isotropic or uniaxial strain have been systematically investigated using first-principles calculations. It is interesting to find that: 1) Under a large enough isotropic tensile strain, the monolayer phosphorene would lose its pucker structure and transform into a flat hexagonal plane, while two inner sublayers of the bilayer phosphorene could be bonded due to its interlayer distance contraction. 2) Under the uniaxial tensile strain along a zigzag direction, the pucker distance of each layer in the bilayer phosphorene can exhibit a specific negative Poisson's ratio. 3) The electronic properties of both the monolayer and bilayer phosphorenes are sensitive to the magnitude and direction of the applied strains. Their band gaps decrease more rapidly under isotropic compressive strain than under uniaxial strain. Also, their direct-indirect band gap transitions happen at the larger isotropic tensile strains compared with that under uniaxial strain. 4) Under the isotropic compressive strain, the bilayer phosphorene exhibits a transition from a direct-gap semiconductor to a metal. In contrast, the monolayer phosphorene initially has the direct-indirect transition and then transitions to a metal. However, under isotropic tensile strain, both the bilayer and monolayer phosphorene show the direct-indirect transition and, finally, the transition to a metal. Our numerical results may open new potential applications of phosphorene in nanoelectronics and nanomechanical devices by external isotropic strain or uniaxial strain along different directions.
机译:使用第一性原理计算系统地研究了在各向同性或单轴应变下单层和双层磷光体的机械和电子性能。有趣的发现是:1)在足够大的各向同性拉伸应变下,单层phosphor将失去其褶皱结构,并转变为平坦的六边形平面,而双层two的两个内部子层由于其层间距离收缩而可以结合。 2)在沿之字形方向的单轴拉伸应变下,双层磷烯中每一层的褶皱距离可以表现出特定的负泊松比。 3)单层和双层磷光体的电子性质都对所施加应变的大小和方向敏感。在各向同性压缩应变下,它们的带隙减小比在单轴应变下更快。而且,与单轴应变相比,它们的直接-间接带隙跃迁发生在较大的各向同性拉伸应变下。 4)在各向同性压缩应变下,双层phosphor呈现出从直接隙半导体到金属的转变。相反,单层phosphor最初具有直接-间接转变,然后转变成金属。然而,在各向同性拉伸应变下,双层和单层磷光体均显示出直接-间接转变,最后转变为金属。我们的数值结果可能会通过不同方向上的外部各向同性应变或单轴应变,开辟磷在纳米电子学和纳米机械设备中的新潜在应用。

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