Suppr超能文献

氢诱导半导体表面金属化中揭示的原子尺度纳米化学。

Nanochemistry at the atomic scale revealed in hydrogen-induced semiconductor surface metallization.

作者信息

Derycke Vincent, Soukiassian Patrick G, Amy Fabrice, Chabal Yves J, D'angelo Marie D, Enriquez Hanna B, Silly Mathieu G

机构信息

Commissariat à l'Energie Atomique, Laboratoire Surfaces et Interfaces de Matériaux Avancés associé à l'Université de Paris-Sud/Orsay, DSM-DRECAM-SPCSI, Bâtiment 462, Saclay, 91191 Gif sur Yvette Cedex, France.

出版信息

Nat Mater. 2003 Apr;2(4):253-8. doi: 10.1038/nmat835.

Abstract

Passivation of semiconductor surfaces against chemical attack can be achieved by terminating the surface-dangling bonds with a monovalent atom such as hydrogen. Such passivation invariably leads to the removal of all surface states in the bandgap, and thus to the termination of non-metallic surfaces. Here we report the first observation of semiconductor surface metallization induced by atomic hydrogen. This result, established by using photo-electron and photo-absorption spectroscopies and scanning tunnelling techniques, is achieved on a Si-terminated cubic silicon carbide (SiC) surface. It results from competition between hydrogen termination of surface-dangling bonds and hydrogen-generated steric hindrance below the surface. Understanding the ingredient for hydrogen-stabilized metallization directly impacts the ability to eliminate electronic defects at semiconductor interfaces critical for microelectronics, provides a means to develop electrical contacts on high-bandgap chemically passive materials, particularly for interfacing with biological systems, and gives control of surfaces for lubrication, for example of nanomechanical devices.

摘要

通过用氢等单价原子终止表面悬挂键,可以实现半导体表面对化学侵蚀的钝化。这种钝化总是会导致带隙中所有表面态的去除,从而实现非金属表面的终止。在此,我们报告首次观察到由原子氢诱导的半导体表面金属化。通过光电子和光吸收光谱以及扫描隧道技术确定的这一结果,是在硅终止的立方碳化硅(SiC)表面上实现的。它是由表面悬挂键的氢终止与表面下方氢产生的空间位阻之间的竞争导致的。理解氢稳定金属化的成分直接影响消除对微电子至关重要的半导体界面处电子缺陷的能力,提供了在高带隙化学惰性材料上开发电接触的方法,特别是用于与生物系统接口,并实现对表面的控制以进行润滑,例如纳米机械设备的润滑。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验