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半导体中的缺陷:有些是致命的,有些是至关重要的。

Defects in semiconductors: some fatal, some vital.

作者信息

Queisser HJ, Haller EE

机构信息

Department of Materials Science and Mineral Engineering, University of California and Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.

出版信息

Science. 1998 Aug 14;281(5379):945-50. doi: 10.1126/science.281.5379.945.

Abstract

REVIEW The role of defects as essential entities in semiconductor materials is reviewed. Early experiments with semiconductors were hampered by the extreme sensitivity of the electronic properties to minute concentrations of impurities. Semiconductors were viewed as a family of solids with irreproducible properties. Scientific efforts overcame this idiosyncrasy and turned the art of impurity doping into today's exceedingly useful and reproducible technology that is used to control precisely electrical conductivity, composition, and minority-carrier lifetimes over wide ranges. Native defects such as vacancies and self-interstitials control basic processes, foremost self- and dopant diffusion. The structural properties of dislocations and higher dimensional defects have been studied with atomic resolution, but a thorough theoretical understanding of their electronic properties is incomplete. Reactions between defects within the host lattices are increasingly better understood and are used for gettering and electrical passivation of unwanted impurities. Metastable defects such as DX centers and the EL2-related arsenic antisite are briefly discussed. The recent development of isotopically controlled semiconductors has created new research opportunities in this field.

摘要

综述 回顾了缺陷作为半导体材料中基本实体的作用。早期的半导体实验受到电子性质对微量杂质浓度极端敏感的阻碍。半导体曾被视为一类性质不可重现的固体。科学研究克服了这一特性,将杂质掺杂技术发展成为如今极为有用且可重现的技术,该技术可在很宽的范围内精确控制电导率、成分以及少数载流子寿命。诸如空位和自间隙原子等本征缺陷控制着基本过程,尤其是自扩散和掺杂剂扩散。位错和更高维缺陷的结构性质已通过原子分辨率进行了研究,但对其电子性质的透彻理论理解仍不完整。对主体晶格内缺陷之间的反应的理解越来越深入,并被用于去除有害杂质和对其进行电钝化。简要讨论了诸如 DX 中心和与 EL2 相关的砷反位等亚稳缺陷。同位素控制半导体的最新发展为该领域创造了新的研究机会。

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