炼金术中的太阳
材料科学
光电子学
太阳能电池
堆栈(抽象数据类型)
光伏系统
堆积
太阳能电池效率
化学
电气工程
计算机科学
工程类
有机化学
程序设计语言
作者
Kikuo Makita,Hidenori Mizuno,Takeshi Tayagaki,Taketo Aihara,Ryuji Oshima,Yasushi Shoji,Hitoshi Sai,Hidetaka Takato,Ralph Müller,Paul Beutel,David Lackner,Jan Benick,Martin Hermle,Frank Dimroth,Takeyoshi Sugaya
摘要
Abstract Multijunction (MJ) solar cells achieve very high efficiencies by effectively utilizing the entire solar spectrum. Previously, we constructed a III‐V//Si MJ solar cell using the smart stack technology, a unique mechanical stacking technology with Pd nanoparticle array. In this study, we fabricated an InGaP/AlGaAs//Si three‐junction solar cell with an efficiency of 30.8% under AM 1.5G solar spectrum illumination. This efficiency is considerably higher than our previous result (25.1%). The superior performance was achieved by optimizing the structure of the upper GaAs‐based cell and employing a tunnel oxide passivated contact Si cell. Furthermore, we examined the low solar concentration performance of the device and obtained a maximum efficiency of 32.6% at 5.5 suns. This performance is sufficient for realistic low concentration photovoltaic applications (below 10 suns). In addition, we characterize the reliability of the InGaP/AlGaAs//Si three‐junction solar cell with a damp heat test (85 °C and 85% humidity for 1000 h). It was confirmed that our solar cells have high long‐term stability under severe conditions. The results demonstrate the potential of GaAs//Si MJ solar cells as next‐generation photovoltaic cells and the effectiveness of smart stack technology in fabricating multijunction cells.
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