材料科学
原子层沉积
钙钛矿(结构)
掺杂剂
光电子学
薄板电阻
电极
透射率
氧化锡
氧化铟锡
铟
锌
兴奋剂
图层(电子)
纳米技术
沉积(地质)
氧化物
透明导电膜
可扩展性
锡
薄膜
电阻率和电导率
介孔材料
多孔性
钙钛矿太阳能电池
光伏
作者
Xuewei Jiang,Qingbo Wang,Jinwei Hao,Geng Yang,Xing Yang,Wenbin Zhou,C Li,Bin Shan,Fan Yang,R G Chen
出处
期刊:Small
[Wiley]
日期:2026-04-18
卷期号:: e14903-e14903
标识
DOI:10.1002/smll.202514903
摘要
ABSTRACT Large‐area commercialization of perovskite solar modules remains limited by cost and scarcity of indium‐based transparent electrodes. Here, we report a scalable aluminum‐doped zinc oxide (AZO) fabricated by spatial Atomic Layer Deposition (ALD) that achieves record electrical performance through atomic‐level dopant regulation. By controlling the Al:Zn cycle ratio, Al incorporation within 2.4%–4.2% was precisely tuned to optimize conductivity. Systematic experiments and calculations reveal that low Al concentrations favor substitutional incorporation, increasing carrier, while higher concentrations induce interstitial defects that contribute to carrier and enhance scattering, defining an optimum doping window. The AZO exhibits a sheet resistance of 3.3 Ω sq −1 , lower than commercial indium tin oxide (ITO, 5.8 Ω sq −1 ), with 90% transmittance and 55% haze. Spatial ALD ensures uniform deposition across 900 cm 2 substrates (2.36% thickness variation, 4.62% sheet‐resistance variation), enabling 18.50% efficiency in large‐area modules, the highest reported to date. This approach offers a manufacturing‐compatible route toward indium‐free, high‐conductivity electrodes for scalable devices.
科研通智能强力驱动
Strongly Powered by AbleSci AI