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Real time observation of ZnO nanostructure formation via the solid-vapor and solid-solid-vapor mechanisms

机译:实时观察氧化锌奈米结构通过solid-vapor和形成solid-solid-vapor机制

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We report in situ transmission electron microscopy studies of the formation of ZnO nanostructures -nanoscale depressions, nanoholes, nanoribbons, and nanosheets - and the phase stability and kinetics of Au catalysts on ZnO. During annealing, the ZnO layer produces hexagonally shaped, vertical nanoscale depressions, which increase in size along the (0001) growth direction through preferential dissociation from the {1010} facet and which subsequently form hexagonal islands at their six-fold junctions. Real time observations of the annealing of Au deposited on ZnO show that the catalysts remain solid up to 900 °C, an observation that has implications regarding ZnO nanowire growth via the vapor-solid-solid mechanism (VSS). The Au also creates hexagonal nanoscale holes only at the location of solid Au catalysts, via the solid-solid-vapor (SSV) mechanism. Importantly, coarsening of the Au particles is negligible due to limited Au diffusion on the side facets of the nanoscale depressions, suggesting an approach to the growth of uniform hybrid nanowires with control over both diameter and location Furthermore, we directly monitor the evolution of the transformation of a nanoribbon into a nanosheet with {1010} facets. This process takes place through a periodic, kinetic roughening transition of the surface, which is controlled by the kinetic competition between surface growth and the transfer of evaporated gases. In total, these observations give new insights into multiple growth processes occurring in this important materials system.
机译:我们报告原位透射电子显微镜研究了氧化锌纳米结构的形成纳米尺度的萧条,nanoholes nanoribbons,和nanosheets——和相位稳定性非盟动力学对氧化锌催化剂。退火,氧化锌层生产六角形状,垂直纳米萧条增加尺寸沿(0001)增长方向通过优惠离解{1010}面和随后形成六角群岛6倍连接。退火的实时观测天文单位沉积在氧化锌表明,催化剂仍然存在固体900°C,一个观察的影响对氧化锌纳米线通过增长vapor-solid-solid机制(VSS)。只有在还创建了六角形纳米洞固体的位置非盟催化剂,通过solid-solid-vapor(科学)机制。非盟的粗化粒子可以忽略不计非盟有限扩散方面的纳米尺度的萧条,暗示的方法均匀混合的纳米线的生长控制两个直径和位置此外,我们直接监控的进化nanoribbon变成的变换nanosheet与{1010}面。通过一个周期,动态粗化过渡的表面,控制动能之间的竞争表面生长和蒸发气体的转移。这些观察结果给的新见解多个增长过程发生在这重要的材料系统。

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