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硅纳米线生长过程中边缘流控催化剂界面动力学

Ledge-flow-controlled catalyst interface dynamics during Si nanowire growth.

作者信息

Hofmann Stephan, Sharma Renu, Wirth Christoph T, Cervantes-Sodi Felipe, Ducati Caterina, Kasama Takeshi, Dunin-Borkowski Rafal E, Drucker Jeff, Bennett Peter, Robertson John

机构信息

Department of Engineering, University of Cambridge, Cambridge CB3 0FA, UK.

出版信息

Nat Mater. 2008 May;7(5):372-5. doi: 10.1038/nmat2140. Epub 2008 Mar 9.

Abstract

Self-assembled nanowires offer the prospect of accurate and scalable device engineering at an atomistic scale for applications in electronics, photonics and biology. However, deterministic nanowire growth and the control of dopant profiles and heterostructures are limited by an incomplete understanding of the role of commonly used catalysts and specifically of their interface dynamics. Although catalytic chemical vapour deposition of nanowires below the eutectic temperature has been demonstrated in many semiconductor-catalyst systems, growth from solid catalysts is still disputed and the overall mechanism is largely unresolved. Here, we present a video-rate environmental transmission electron microscopy study of Si nanowire formation from Pd silicide crystals under disilane exposure. A Si crystal nucleus forms by phase separation, as observed for the liquid Au-Si system, which we use as a comparative benchmark. The dominant coherent Pd silicide/Si growth interface subsequently advances by lateral propagation of ledges, driven by catalytic dissociation of disilane and coupled Pd and Si diffusion. Our results establish an atomistic framework for nanowire assembly from solid catalysts, relevant also to their contact formation.

摘要

自组装纳米线为电子、光子学和生物学领域的应用提供了在原子尺度上进行精确且可扩展的器件工程的前景。然而,确定性的纳米线生长以及掺杂剂分布和异质结构的控制受到对常用催化剂的作用,特别是其界面动力学的理解不完整的限制。尽管在许多半导体 - 催化剂系统中已经证明了在共晶温度以下通过催化化学气相沉积法生长纳米线,但从固体催化剂生长仍然存在争议,并且整体机制在很大程度上尚未解决。在这里,我们展示了一项视频速率环境透射电子显微镜研究,该研究是关于在乙硅烷暴露下由硅化钯晶体形成硅纳米线的过程。通过相分离形成硅晶核,这与液态金 - 硅系统中观察到的情况一样,我们将液态金 - 硅系统用作比较基准。随后,由乙硅烷的催化解离以及耦合的钯和硅扩散驱动,主要的相干硅化钯/硅生长界面通过台阶的横向传播而推进。我们的结果建立了一个从固体催化剂组装纳米线的原子框架,这对于它们的接触形成也具有相关性。

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