串联
光伏
材料科学
制作
钙钛矿(结构)
光电子学
光伏系统
能量转换效率
可扩展性
电致发光
太阳能
纳米技术
计算机科学
电气工程
图层(电子)
复合材料
化学
医学
替代医学
病理
数据库
结晶学
工程类
作者
Bahram Abdollahi Nejand,David B. Ritzer,Hang Hu,Fabian Schackmar,Somayeh Moghadamzadeh,Thomas Feeney,Roja Singh,Felix Laufer,Raphael Schmager,Raheleh Azmi,Milian Kaiser,Tobias Abzieher,Saba Gharibzadeh,Erik Ahlswede,Uli Lemmer,Bryce S. Richards,Ulrich W. Paetzold
出处
期刊:Nature Energy
[Nature Portfolio]
日期:2022-07-07
卷期号:7 (7): 620-630
被引量:160
标识
DOI:10.1038/s41560-022-01059-w
摘要
Abstract Monolithic all-perovskite tandem photovoltaics promise to combine low-cost and high-efficiency solar energy harvesting with the advantages of all-thin-film technologies. To date, laboratory-scale all-perovskite tandem solar cells have only been fabricated using non-scalable fabrication techniques. In response, this work reports on laser-scribed all-perovskite tandem modules processed exclusively with scalable fabrication methods (blade coating and vacuum deposition), demonstrating power conversion efficiencies up to 19.1% (aperture area, 12.25 cm 2 ; geometric fill factor, 94.7%) and stable power output. Compared to the performance of our spin-coated reference tandem solar cells (efficiency, 23.5%; area, 0.1 cm 2 ), our prototypes demonstrate substantial advances in the technological readiness of all-perovskite tandem photovoltaics. By means of electroluminescence imaging and laser-beam-induced current mapping, we demonstrate the homogeneous current collection in both subcells over the entire module area, which explains low losses (<5% rel ) in open-circuit voltage and fill factor for our scalable modules.
科研通智能强力驱动
Strongly Powered by AbleSci AI