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核壳纳米线中的晶体结构转移。

Crystal structure transfer in core/shell nanowires.

机构信息

Materials Innovation Institute (M2i), 2628CD Delft, The Netherlands.

出版信息

Nano Lett. 2011 Apr 13;11(4):1690-4. doi: 10.1021/nl200208q. Epub 2011 Mar 21.

Abstract

Structure engineering is an emerging tool to control opto-electronic properties of semiconductors. Recently, control of crystal structure and the formation of a twinning superlattice have been shown for III-V nanowires. This level of control has not been obtained for Si nanowires, the most relevant material for the semiconductor industry. Here, we present an approach, in which a designed twinning superlattice with the zinc blende crystal structure or the wurtzite crystal structure is transferred from a gallium phosphide core wire to an epitaxially grown silicon shell. These materials have a difference in lattice constants of only 0.4%, which allows for structure transfer without introducing extra defects. The twinning superlattices, periodicity, and shell thickness can be tuned with great precision. Arrays of free-standing Si nanotubes are obtained by a selective wet-chemical etch of the core wire.

摘要

结构工程是一种新兴的工具,可用于控制半导体的光电性能。最近,人们已经展示了对 III-V 纳米线的晶体结构控制和孪晶超晶格的形成。对于硅纳米线,这种控制水平尚未实现,硅纳米线是半导体工业中最相关的材料。在这里,我们提出了一种方法,其中具有闪锌矿晶体结构或纤锌矿晶体结构的设计孪晶超晶格可以从磷化镓芯线转移到外延生长的硅壳上。这些材料的晶格常数仅相差 0.4%,这允许在不引入额外缺陷的情况下进行结构转移。孪晶超晶格、周期性和壳层厚度可以非常精确地进行调整。通过对芯线进行选择性的湿法化学腐蚀,可以获得由自由-standing Si 纳米管组成的阵列。

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