Comparative study on damage characteristics of triple-junction GaAs solar cell irradiated by pulsed laser in different environments

Yuehong Hu, Jie Peng, Siqi Liu, Zhihua Wu, Huailong Fu, Mingbo He, Luming Huang
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Abstract

Triple-junction GaAs solar cells were irradiated by nanosecond pulse laser with a wavelength of 1064nm, in atmospheric and vacuum environments respectively to study the damage characteristics of triple-junction GaAs solar cells irradiated nanosecond pulse laser in different environments, and the damage effects of pulse laser in two environments were compared and analyzed. The experimental results show that the damage of solar cells irradiated by nanosecond pulse laser is significantly affected by the target energy density, and the damage effect is positively correlated with the number of pulses, which increases with the number of pulses. Due to the high peak power, short action time, no obvious thermal effect of the action process, and no material migration phenomenon, the damage effect of solar cells is similar under pulsed laser irradiation with the same parameters in different environments.
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不同环境下脉冲激光辐照三结砷化镓太阳能电池损伤特性的比较研究
分别在大气环境和真空环境下,用波长为1064nm的纳秒脉冲激光辐照三结砷化镓太阳能电池,研究不同环境下纳秒脉冲激光辐照三结砷化镓太阳能电池的损伤特性,并比较分析了两种环境下脉冲激光的损伤效应。实验结果表明,纳秒脉冲激光辐照太阳能电池的损伤受目标能量密度的影响显著,损伤效应与脉冲数呈正相关,且随脉冲数的增加而增大。由于脉冲激光峰值功率高、作用时间短、作用过程无明显热效应、无材料迁移现象,因此在不同环境下,相同参数的脉冲激光辐照对太阳能电池的损伤效果相似。
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