光伏
晶界
材料科学
薄膜
钝化
碲化镉光电
太阳能电池
Crystal(编程语言)
锑
能量转换效率
悬空债券
带隙
基质(水族馆)
蒸发
光电子学
纳米技术
冶金
硅
微观结构
光伏系统
物理
图层(电子)
生态学
海洋学
地质学
计算机科学
生物
程序设计语言
热力学
作者
Ying Zhou,Liang Wang,Shiyou Chen,Sikai Qin,Xinsheng Liu,Jie Chen,Ding‐Jiang Xue,Miao Luo,Yuanzhi Cao,Yi‐Bing Cheng,Edward H. Sargent,Jiang Tang
出处
期刊:Nature Photonics
[Nature Portfolio]
日期:2015-05-18
卷期号:9 (6): 409-415
被引量:1005
标识
DOI:10.1038/nphoton.2015.78
摘要
Solar cells based on inorganic absorbers, such as Si, GaAs, CdTe and Cu(In,Ga)Se2, permit a high device efficiency and stability. The crystals’ three-dimensional structure means that dangling bonds inevitably exist at the grain boundaries (GBs), which significantly degrades the device performance via recombination losses. Thus, the growth of single-crystalline materials or the passivation of defects at the GBs is required to address this problem, which introduces an added processing complexity and cost. Here we report that antimony selenide (Sb2Se3)—a simple, non-toxic and low-cost material with an optimal solar bandgap of ∼1.1 eV—exhibits intrinsically benign GBs because of its one-dimensional crystal structure. Using a simple and fast (∼1 μm min–1) rapid thermal evaporation process, we oriented crystal growth perpendicular to the substrate, and produced Sb2Se3 thin-film solar cells with a certified device efficiency of 5.6%. Our results suggest that the family of one-dimensional crystals, including Sb2Se3, SbSeI and Bi2S3, show promise in photovoltaic applications. Materials with a one-dimensional crystal structure, such as antimony selenide, show considerable potential for making efficient thin-film solar cells.
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