Hoang Minh Tam, Yang Yang, Tuten Bryan, Wang Hongxia
School of Chemistry and Physics, Faculty of Science, Queensland University of Technology, Brisbane, QLD 4001, Australia.
Centre for Materials Science, Queensland University of Technology, Brisbane, QLD 4001, Australia.
J Phys Chem Lett. 2022 Apr 7;13(13):2908-2920. doi: 10.1021/acs.jpclett.2c00386. Epub 2022 Mar 25.
The appeal of metal halide perovskite solar cells (PSCs) has been widely demonstrated in the field of photovoltaic technology. On account of the excellent optical and electrical properties, as well as compatibility with flexible substrates, the PSCs also hold the highest record of specific power for lightweight solar cell devices, suggesting excellent promise in space applications. Hence, there is increasing interest in the performance of PSCs in space environments where radiation beams and thermal cycling can cause extreme stress on the devices. In this Perspective, we provide a brief summary of the research on PSCs for space applications. The radiation tolerance and thermal stability of PSCs and the fundamental mechanisms are discussed and analyzed. Key challenges facing PSC technology toward future space applications are demonstrated. This Perspective features the prospect of PSCs as the next frontier in space PV technology.
金属卤化物钙钛矿太阳能电池(PSC)在光伏技术领域的吸引力已得到广泛证明。由于其优异的光学和电学性能,以及与柔性基板的兼容性,PSC在轻质太阳能电池器件中还保持着比功率的最高纪录,这表明其在太空应用中具有巨大潜力。因此,人们越来越关注PSC在太空环境中的性能,在这种环境中,辐射束和热循环会对器件造成极大压力。在这篇展望文章中,我们简要总结了用于太空应用的PSC的研究情况。讨论并分析了PSC的辐射耐受性和热稳定性及其基本机制。展示了PSC技术在未来太空应用中面临的关键挑战。这篇展望文章突出了PSC作为太空光伏技术下一个前沿领域的前景。