光伏
薄膜
X射线光电子能谱
图层(电子)
材料科学
晶界
太阳能电池
化学浴沉积
光电子学
带隙
异质结
硒化物
衰减系数
吸收(声学)
纳米技术
化学工程
光伏系统
光学
冶金
复合材料
微观结构
硒
工程类
物理
生物
生态学
作者
Liang Wang,Miao Luo,Sikai Qin,Xinsheng Liu,Jie Chen,Bo Yang,Meiying Leng,Ding‐Jiang Xue,Ying Zhou,Liang Gao,Haisheng Song,Jiang Tang
摘要
Antimony selenide (Sb2Se3) is appealing as a promising light absorber because of its intrinsically benign grain boundaries, suitable band gap (∼1.1 eV), strong absorption coefficient, and relatively environmentally friendly constituents. Recently, we achieved a certified 5.6% efficiency Sb2Se3 thin film solar cell with the assistance of ambient CdCl2 treatment on the CdS buffer layer. Here, we focused on investigating the underlying mechanism from a combined materials and device physics perspective applying current density-voltage (J-V) fitting analysis, atomic force microscope, X-ray photoelectron spectroscopy, fluorescence, and UV–Vis transmission spectroscopy. Our results indicated that ambient CdCl2 treatment on CdS film not only improved CdS grain size and quality, but also incorporated Cl and more O into the film, both of which can significantly improve the heterojunction quality and device performance of CdS/Sb2Se3 solar cells.
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