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The physics and technology of gallium antimonide: An emerging optoelectronic material

锑化镓 材料科学 钝化 工程物理 光电子学 制作 光子学 纳米技术 数码产品 升级 计算机科学 电气工程 工程类 医学 替代医学 图层(电子) 病理 超晶格 操作系统
作者
Pradip Dutta,H. L. Bhat,Vikram Kumar
出处
期刊:Journal of Applied Physics [American Institute of Physics]
卷期号:81 (9): 5821-5870 被引量:684
标识
DOI:10.1063/1.365356
摘要

Recent advances in nonsilica fiber technology have prompted the development of suitable materials for devices operating beyond 1.55 μm. The III–V ternaries and quaternaries (AlGaIn)(AsSb) lattice matched to GaSb seem to be the obvious choice and have turned out to be promising candidates for high speed electronic and long wavelength photonic devices. Consequently, there has been tremendous upthrust in research activities of GaSb-based systems. As a matter of fact, this compound has proved to be an interesting material for both basic and applied research. At present, GaSb technology is in its infancy and considerable research has to be carried out before it can be employed for large scale device fabrication. This article presents an up to date comprehensive account of research carried out hitherto. It explores in detail the material aspects of GaSb starting from crystal growth in bulk and epitaxial form, post growth material processing to device feasibility. An overview of the lattice, electronic, transport, optical and device related properties is presented. Some of the current areas of research and development have been critically reviewed and their significance for both understanding the basic physics as well as for device applications are addressed. These include the role of defects and impurities on the structural, optical and electrical properties of the material, various techniques employed for surface and bulk defect passivation and their effect on the device characteristics, development of novel device structures, etc. Several avenues where further work is required in order to upgrade this III–V compound for optoelectronic devices are listed. It is concluded that the present day knowledge in this material system is sufficient to understand the basic properties and what should be more vigorously pursued is their implementation for device fabrication.
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