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Phase transformation and its effect on the piezopotential in a bent zinc oxide nanowire

机译:相变及其对钢筋氧化锌纳米线压力势的影响

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Most piezotronic nanodevices rely on the piezopotential generated by the bending of their component piezoelectric nanowires (NWs). The mechanical behaviours and piezopotential properties of zinc oxide (ZnO) NWs under lateral bending are investigated in this paper by using a multiscale modelling technique combining first-principles calculations, molecular dynamics simulations and finite-element calculations. Two phase transformation processes are successively found in ZnO NWs by increasing the bending force. As a result, the inner and outer surfaces of bent ZnO NWs transform from the parent wurtzite (WZ) structure to a hexagonal (HX) structure and a body-centred-tetragonal (BCT-4) structure, respectively. Different material properties are found among the WZ, BCT-4, and HX structures, which result in a significant change in the piezopotential distribution in bent ZnO NWs after the phase transformation. Meanwhile, the piezopotential generated in bent ZnO NWs can be enhanced by an order of magnitude due to the phase transformation. Moreover, a significant increase in the electronic band gap is found in the transformed HX structure, which implies that the phase transformation may also affect the piezopotential in bent ZnO NWs by modifying their semiconducting properties especially when the doping level of NWs is large.
机译:大多数压电纳米器件依赖于其组件压电纳米线(NWs)弯曲产生的压电势。本文采用第一性原理计算、分子动力学模拟和有限元计算相结合的多尺度模拟技术,研究了氧化锌纳米线在侧向弯曲下的力学行为和压电性能。随着弯曲力的增加,ZnO纳米线中先后出现了两种相变过程。因此,弯曲的ZnO纳米线的内表面和外表面分别从母纤锌矿(WZ)结构转变为六角形(HX)结构和体心四方(BCT-4)结构。在WZ、BCT-4和HX结构中发现了不同的材料性质,这导致在相变后弯曲的ZnO纳米线中的压电势分布发生显著变化。同时,由于相变,弯曲ZnO纳米线中产生的压电势可以提高一个数量级。此外,在转变后的HX结构中发现电子带隙显著增加,这意味着相变也可能通过改变其半导体性质影响弯曲ZnO纳米线中的压电势,尤其是当纳米线的掺杂水平较大时。

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