Equipment for growing semiconductor heterostructures in outer space

V. Blinov, V. M. Vladimirov, S. Kulinich, A. Nikiforov, D. N. Pridachin, D. Pchelyakov, O. Pchelyakov, L. Sokolov, D. V. Yarockiy
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引用次数: 1

Abstract

This article describes the features of the equipment developed at the Rzhanov Institute of Semiconductor Physics for conducting experiments on growing semiconductor heterostructures from molecular beams in outer space under the conditions of an orbital flight of the International Space Station. Working out the processes of epitaxy of semiconductor films in outer space will allow us to grow complex semiconductor structures with sharp boundaries, which serve as the basis for the creation of solar cells, as well as devices of modern microwave, optoand microelectronics. Cascade photovoltaic converters based on such multilayer heterostructures of A3B5 semiconductor compounds have high efficiency and radiation resistance and, therefore, are most widely used for the manufacture of space solar cells. The high efficiency of such batteries is due to the wide spectral range in which solar radiation is effectively absorbed and used in photovoltaic conversion.
在外层空间生长半导体异质结构的设备
本文介绍了在国际空间站轨道飞行条件下利用分子束在外层空间生长半导体异质结构的实验设备的特点。研究在外太空半导体薄膜外延的工艺将使我们能够生长出具有清晰边界的复杂半导体结构,这将成为制造太阳能电池以及现代微波、光电和微电子器件的基础。基于A3B5半导体化合物多层异质结构的串级光伏变换器具有高效率和抗辐射性能,因此在空间太阳能电池的制造中应用最为广泛。这种电池的高效率是由于在宽的光谱范围内,太阳辐射被有效地吸收并用于光伏转换。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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