首页> 外文会议>International Mechanical Engineering Congress and Exposition 2007 >EFFECT OF STRAIN INDUCED CHARGE REDISTRIBUTION ON YOUNG'S MODULUS OF ZINC OXIDE NANOWIRES
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EFFECT OF STRAIN INDUCED CHARGE REDISTRIBUTION ON YOUNG'S MODULUS OF ZINC OXIDE NANOWIRES

机译:应变诱导电荷的再分布对氧化锌纳米线杨氏模量的影响

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As the size of material decreases to nanoscale, fundamental material properties such as Young's modulus are different from bulk values. In this paper, we propose a new mechanism to explain the difference in experimentally observed Young's modulus values between zinc oxide nanowires and bulk zinc oxide. As a binary compound material (such as zinc oxide) is strained, the effective charge on the ionic constituents of the material changes (in this case zinc and oxygen). The strain induced charge redistribution effect is more significant in nanostructures (such as nanowires) because of their higher fracture strains compared to their bulk counterparts. Since the Young's modulus of a material is related to the effective charge, we observe differences in modulus values between nanowires and their bulk equivalent. The strain induced charge redistribution phenomenon can also be used to explain variation in modulus values between bulk and nanoscale for other single crystal piezoelectric materials such as silicon carbide.
机译:随着材料的尺寸减小到纳米级,诸如杨氏模量之类的基本材料特性与散装值不同。在本文中,我们提出了一种新机制来解释实验观察到氧化锌纳米线和氧化锌氧化锌之间的实验观察模量值的差异。作为二元复合材料(例如氧化锌),应变,材料的离子成分的有效电荷变化(在这种情况下锌和氧)。由于它们的散装对应物相比,应变诱导的电荷再分配效果在纳米结构(如纳米线)中更显着。由于杨氏模量与有效充电有关,因此我们观察纳米线之间模数值的差异及其体重等效。应变诱导的电荷再分布现象也可用于解释用于其他单晶压电材料的体积和纳米级之间的模量值的变化,例如碳化硅。

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