外延量子点的发明历程

IF 4.5 2区 材料科学 Q1 CRYSTALLOGRAPHY
Emanuele Pelucchi
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引用次数: 0

摘要

在过去40年左右的时间里,外延半导体量子点一直是一个大型社区研究工作的中心。鉴于其广泛的应用和潜力,重点是“半导体物理和器件”,例如,用于电信波长的高效温度不敏感激光器,或用于量子信息处理的“人造原子”。我们的手稿旨在从历史的角度解决(III-V)外延量子点早期发展(主要用于发光)和随后几年的具体问题。我们不仅会强调各种外延结构和方法,而且还会有意地略读教学方法,讨论目前文献中一般很少承认或争论的方面。这些分析自然也会使我们审视这个领域目前面临的一些挑战,尽管取得了轰动的成就,但值得注意的是,这个领域的发展和应用还远远不够成熟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the multifaceted journey for the invention of epitaxial quantum dots

Epitaxial semiconductor quantum dots have been, in the last 40 years or so, at the center of the research effort of a large community. The focus being on “semiconductor physics and devices”, in view of the broad applications and potential, e.g., for efficient temperature insensitive lasers at telecom wavelengths, or as “artificial atoms” for quantum information processing. Our manuscript aims at addressing, with an historical perspective, the specifics of (III-V) epitaxial quantum dot early developments (largely for light emitting) and subsequent years. We will not only highlight the variety of epitaxial structures and methods, but also, intentionally glancing a didactic approach, discuss aspects that are, in general, little acknowledged or debated in the present literature. The analyses will also naturally bring us to examine some of current challenges, in a field which, despite sensational achievements, is, remarkably, still far from being mature in its developments and applications.

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来源期刊
Progress in Crystal Growth and Characterization of Materials
Progress in Crystal Growth and Characterization of Materials 工程技术-材料科学:表征与测试
CiteScore
8.80
自引率
2.00%
发文量
10
审稿时长
1 day
期刊介绍: Materials especially crystalline materials provide the foundation of our modern technologically driven world. The domination of materials is achieved through detailed scientific research. Advances in the techniques of growing and assessing ever more perfect crystals of a wide range of materials lie at the roots of much of today''s advanced technology. The evolution and development of crystalline materials involves research by dedicated scientists in academia as well as industry involving a broad field of disciplines including biology, chemistry, physics, material sciences and engineering. Crucially important applications in information technology, photonics, energy storage and harvesting, environmental protection, medicine and food production require a deep understanding of and control of crystal growth. This can involve suitable growth methods and material characterization from the bulk down to the nano-scale.
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