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Heteroepitaxy, an Amazing Contribution of Crystal Growth to the World of Optics and Electronics

机译:异质外延,晶体生长对光学和电子世界的惊人贡献

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Advances in Electronics and Optics are often preceded by discoveries in Crystal Growth theory and practice. This article represents in retrospect some of the most significant contributions of heteroepitaxy in these and some other areas—the strong impact of the three modes of heteroepitaxy on microelectronics and quantum optics, the big “push” of PENDEO epitaxy in development of Light Emitting Diodes, etc. A large part of the text is dedicated to heteroepitaxy of nonlinear optical materials grown on orientation-patterned templates and used in the development of new quasi-phase-matching frequency conversion laser sources. By achieving new frequency ranges such sources will result in a wide variety of applications in areas such as defense, security, industry, medicine, and science. Interesting facts from the scientific life of major contributors in the field are mixed in the text with fine details from growth experiments, chemical equations, results from material characterizations and some optical and crystallographic considerations—all these presented in a popular way but without neglecting their scientific importance and depth. The truth is that often heteroepitaxy is not just the better but the only available option. The truth is that delays in device development are usually due to gaps in materials research. In all this, miscommunication between different scientific communities always costs vain efforts, uncertainty, and years of going in a wrong scientific direction. With this article we aim to stimulate a constructive dialog that could lead to solutions of important interdisciplinary scientific and technical issues.
机译:在电子和光学技术的进步之前,常常先有晶体生长理论和实践的发现。本文回顾了异质外延在这些领域和其他领域的一些最重要的贡献-异质外延的三种模式对微电子学和量子光学的强大影响,PENDEO外延在发光二极管发展中的巨大“推动”,本书的大部分内容致力于在定向图案模板上生长的非线性光学材料的异质外延,并用于开发新的准相位匹配频率转换激光源。通过获得新的频率范围,此类信号源将在国防,安全,工业,医学和科学等领域产生广泛的应用。本书中混合了来自该领域主要贡献者科学生命的有趣事实,以及生长实验,化学方程式,材料表征结果以及一些光学和晶体学方面的细节,所有这些都以一种流行的方式呈现,但并未忽略其科学性。重要性和深度。事实是,通常外延不仅更好,而且是唯一可用的选择。事实是,设备开发的延迟通常是由于材料研究的空白。在所有这些情况下,不同科学界之间的沟通不畅总是要付出徒劳的努力,不确定性以及多年错误的科学方向。通过本文,我们旨在激发建设性对话,从而可能导致解决重要的跨学科科学和技术问题。

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