材料科学
非阻塞I/O
钙钛矿(结构)
石墨烯
碳纤维
机制(生物学)
化学工程
纳米技术
光电子学
催化作用
复合材料
复合数
认识论
工程类
哲学
生物化学
化学
作者
Ke Zhao,Qixu Hu,Zhenwu Zhong,Jian Cheng,Yanyan Lu,Salman Riaz,Nasier Maihesumu,Yaxin Wei,Hongyu Mi,Ying Qi,Peng Wei,Pengjun Zhao,Yahong Xie
标识
DOI:10.1021/acsami.5c05732
摘要
The efficiency of carbon-based perovskite solar cells (C-PSCs) still significantly lags behind that of metal-based devices due to the substantial interfacial resistance and energy level mismatch between the carbon electrodes (CE) and the perovskite material. Herein, we present the construction of a carrier highway utilizing coal-derived multilayered graphene (MG) embedded with NiOx as a hole-transport layer (HTL). This approach aims to optimize energy level alignment and enhance interfacial contact, thereby improving the quality of the perovskite film. Due to its unique multilayer structure and abundant oxygen-containing functional groups, coal-derived MG synergized with NiOx HTL not only provides well-aligned energy band configurations that facilitate charge separation and extraction but also acts as a Lewis base to form coordination bonds with uncoordinated lead ions by sharing electron pairs, thereby reducing surface defects and minimizing recombination losses at the perovskite/CE interface, ultimately alleviating fill factor (FF) loss. As a result, the power conversion efficiency (PCE) of the FTO/SnO2/MAPbI3/MG + NiOx/Carbon structured device achieved 18.10%, representing a significant enhancement of 19.3% compared to that of 15.17% for the pristine device. This study presents a novel strategy for enhancing the overall performance of C-PSCs through the utilization of cost-effective and environmentally sustainable carbon functional materials derived from coal.
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