化学
加合物
能量转换效率
电子传输链
钙钛矿(结构)
钝化
化学工程
结晶学
光电子学
有机化学
材料科学
生物化学
工程类
图层(电子)
作者
Azhar Fakharuddin,Konstantina‐Kalliopi Armadorou,Leandros P. Zorba,Marinos Tountas,Tobias Seewald,Anastasia Soultati,Polychronis Tsipas,Emilia R. Schütz,Nikolaos Tzoganakis,Stylianos Panagiotakis,Konstantina Yannakopoulou,A. Dimoulas,Vassilis Psycharis,Emmanuel Kymakis,Abd. Rashid bin Mohd Yusoff,Konstantinos Aidinis,Lukas Schmidt‐Mende,Georgios C. Vougioukalakis,Mohammad Khaja Nazeeruddin,Maria Vasilopoulou
标识
DOI:10.1002/cjoc.202200542
摘要
Comprehensive Summary Inverted perovskite solar cells (PSCs) have attracted increasing attention in recent years owing to their low‐temperature fabrication proces s. However, they suffer from a limited number of electron transport materials available with [6,6]‐phenyl C 61 butyric acid methyl ester (PCBM) to be the most widely studied based on its appropriate energy levels and high electron mobility. The low relative permittivity and aggregation tendency upon illumination of PCBM, however, compromises the solar cell efficiency whereas its modest hydrophobicity negatively impacts on the device stability. Alternative electron transport materials with desired properties and appropriate degree of hydrophobicity are thus desirable for further developments in inverted PSCs. Herein, we synthesize a triethyleneglycol C 60 mono‐adduct derivative (termed as EPF03) and test it as a novel electron transport material to replace PCBM in inverted PSCs based on a quadruple cation (RbCsMAFA) perovskite. We also compare this derivative with two novel fullerenes decorated with two (EPF01) or one dodecyl (EPF02) long side chains. The latter two fail to perform efficiently in inverted PSCs whereas the former enabled a power conversion efficiency of 18.43%, which represents a 9% improvement compared to the reference device using PCBM (17.21%). The enhanced performance mainly stems from improved electron extraction and reduced recombination enabled by the insertion of the large relative permittivity amongst other properties of EPF03. Furthermore, our results indicate that triethylene glycol side chains can also passivate perovskite trap states, suppress ion migration and enhance photostability and long‐term stability of EPF03 based perovskite solar cells.
科研通智能强力驱动
Strongly Powered by AbleSci AI