Advances in intermixed quantum well devices

E. Li
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引用次数: 1

Abstract

Quantum well composition intermixing is a thermal induced interdiffusion of the constituent atoms through the hetero-interface. The intermixed structures created by both impurity induced and impurity free or vacancy promoted processes have recently attracted high attention. The interdiffusion mechanism is no longer confined to a single phase diffusion for two constituent atoms, but it can now consist of two or multiple phases and/or multiple species, such as three cations interdiffusion and two pairs of cation-anion interdiffusion. A review on the impact of intermixing on device physics is presented with many interesting features. For instance, both compressive or tensile strain materials and both blue or red shifts in the bandgap can be achieved depending on the types of intermixing. The recent advancement in intermixing modified optical properties, such as absorption, refractive index as well as electro-optic effects are discussed. In addition, this paper places a strong emphasis on the device application of the intermixing technology. The advantage of being able to tune the material provides a way to improve the performance of photodetectors and modulators. Attractive distributed-feedback and vertical cavity laser dynamics have been shown due to some unique device physics of the quantum well intermixing. Several state-of-the-art results will be summarized with an emphasis on its future development and directions.
混合量子阱器件的研究进展
量子阱组成混合是组成原子通过异质界面的热诱导相互扩散。由杂质诱导和无杂质或空位促进工艺产生的混合结构近年来引起了人们的高度关注。相互扩散机制不再局限于两个组成原子的单相扩散,而是可以由两相或多相和/或多组分组成,如三个阳离子的相互扩散和两对阳离子-阴离子的相互扩散。回顾了混合对器件物理的影响,提出了许多有趣的特征。例如,根据混合的类型,可以实现压缩或拉伸应变材料以及带隙中的蓝移或红移。本文讨论了近年来混合改性光学性质的研究进展,如吸收、折射率和电光效应。此外,本文还重点介绍了混合技术的装置应用。能够调整材料的优势为提高光电探测器和调制器的性能提供了一种方法。由于量子阱混合的一些独特的器件物理特性,已显示出吸引分布反馈和垂直腔激光动力学。总结了几种最新的研究成果,重点介绍了其未来的发展和方向。
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