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Key Techniques for Space-based Solar Pumped Semiconductor Lasers

机译:天基太阳能泵浦半导体激光器的关键技术

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In space, the absence of atmospheric turbulence, absorption, dispersion and aerosol factors on laser transmission. Therefore, space-based laser has important values in satellite communication, satellite attitude controlling, space debris clearing, and long distance energy transmission, etc. On the other hand, solar energy is a kind of clean and renewable resources, the average intensity of solar irradiation on the earth is 1353W/m~2, and it is even higher in space. Therefore, the space-based solar pumped lasers has attracted much research in recent years, most research focuses on solar pumped solid state lasers and solar pumped fiber lasers. The two lasing principle is based on stimulated emission of the rare earth ions such as Nd, Yb, Cr. The rare earth ions absorb light only in narrow bands. This leads to inefficient absorption of the broad-band solar spectrum, and increases the system heating load, which make the system solar to laser power conversion efficiency very low. As a solar pumped semiconductor lasers could absorb all photons with energy greater than the bandgap. Thus, solar pumped semiconductor lasers could have considerably higher efficiencies than other solar pumped lasers. Besides, solar pumped semiconductor lasers has smaller volume chip, simpler structure and better heat dissipation, it can be mounted on a small satellite platform, can compose satellite array, which can greatly improve the output power of the system, and have flexible character. This paper summarizes the research progress of space-based solar pumped semiconductor lasers, analyses of the key technologies based on several application areas, including the processing of semiconductor chip, the design of small and efficient solar condenser, and the cooling system of lasers, etc. We conclude that the solar pumped vertical cavity surface-emitting semiconductor lasers will have a wide application prospects in the space.
机译:在太空中,没有大气湍流,吸收,分散和气溶胶因子在激光传输。因此,基于空间的激光在卫星通信中具有重要的价值,卫星姿态控制,空间碎片清除和长距离能量传输等,另一方面,太阳能是一种清洁和可再生资源,太阳能平均强度地球照射是1353W / m〜2,空间甚至更高。因此,基于空间的太阳能泵浦激光器近年来吸引了很多研究,大多数研究侧重于太阳能泵浦固态激光器和太阳能泵浦光纤激光器。两个激光原理是基于诸如Nd,Yb,Cr等稀土离子的刺激排放。稀土离子仅在窄带中吸收光。这导致宽带太阳能光谱的效率低下,增加了系统加热负载,使系统太阳能变为激光功率转换效率非常低。由于太阳能泵浦半导体激光器可以吸收与带隙大的能量的所有光子。因此,太阳能泵浦半导体激光器可以具有比其他太阳泵浦激光器更高的效率。此外,太阳能泵浦半导体激光器具有较小的体积芯片,更简单的结构和更好的散热,可以安装在小型卫星平台上,可以构成卫星阵列,可以大大提高系统的输出功率,具有灵活的特性。本文总结了基于空间的太阳能泵浦半导体激光器的研究进展,基于几个应用领域的关键技术分析,包括半导体芯片的处理,小型和高效的太阳能冷凝器的设计,以及激光器的冷却系统等。我们得出结论,太阳能泵浦垂直腔表面发射半导体激光器将在该空间中具有广泛的应用前景。

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