材料科学
光电流
光电子学
吸收(声学)
能量转换效率
平面的
硅
俘获
图层(电子)
等离子太阳电池
晶体硅
太阳能电池
电流密度
光伏系统
量子点太阳电池
太阳能电池效率
光学
雷
功率密度
光活性层
降级(电信)
聚合物太阳能电池
有孔小珠
单层
太阳能
功率(物理)
电流(流体)
混合太阳能电池
入射角(光学)
作者
Youri Lee,Sol-I Bae,Kangmin Lee,Kwanyong Seo
标识
DOI:10.1021/acsami.5c22772
摘要
Efficient management of incident light─maximizing absorption while suppressing reflection─is essential for sustaining the power conversion efficiency (PCE) of solar cells under real operating conditions. However, since the position of the sun changes depending on the season and time of day, the light absorption in solar cells fluctuates, decreasing as the angle of incidence increases. To maximize solar power generation, it is therefore essential to mitigate angle-induced light absorption losses. In this study, we employed crystalline silicon microwire arrays to enhance light trapping and reduce incidence-angle-dependent losses. Additionally, transparent, light-scattering silica beads were inserted layer by layer using the Langmuir–Blodgett dip-coating technique, which enabled systematic control of bead thickness from a monolayer to sextuple layers. Among these, the double-layer configuration was found to be optimal, yielding the highest photocurrent density and efficiency. The PCE of planar solar cells decreased by over 38.1% when the incident angle increased from 0° to 50°, whereas the PCE of the solar cells with microwires and silica beads in between decreased by less than 11.9%. Notably, outdoor seasonal calculations revealed that the silica bead integrated structure achieved a cumulative power output of 36.09 MJ/m 2, corresponding to 27.5 and 7.4% improvements compared to planar and microwire cells, respectively, thereby validating its practical applicability. This work provides a simple and effective strategy to reduce the angular dependence of PCE degradation in solar cells.
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