Zhao Ke, Hu Qixu, Zhong Zhenwu, Cheng Jian, Lu Yanyan, Riaz Salman, Maihesumu Nasier, Wei YaXin, Mi Hongyu, Qi Ying, Wei Peng, Zhao Pengjun, Xie Yahong
Key Laboratory of Oil & Gas Fine Chemicals, Ministry of Education and Xinjiang Uyghur Autonomous Region, State Key Laboratory of Chemistry and Utilization of Carbon Based Energy Resources, College of Chemical Engineering, Xinjiang University, Urumqi 830017, P. R. China.
Zhejiang University-Hangzhou Global Scientific and Technological Innovation Center, Hangzhou 310014, P. R. China.
ACS Appl Mater Interfaces. 2025 Jun 18;17(24):35572-35584. doi: 10.1021/acsami.5c05732. Epub 2025 Jun 3.
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 NiO 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 NiO 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/SnO/MAPbI/MG + NiO/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.
由于碳电极(CE)与钙钛矿材料之间存在较大的界面电阻和能级不匹配,碳基钙钛矿太阳能电池(C-PSC)的效率仍显著落后于金属基器件。在此,我们展示了一种利用嵌入NiO作为空穴传输层(HTL)的煤衍生多层石墨烯(MG)构建载流子通道的方法。这种方法旨在优化能级排列并增强界面接触,从而提高钙钛矿薄膜的质量。由于其独特的多层结构和丰富的含氧官能团,煤衍生的MG与NiO HTL协同作用,不仅提供了排列良好的能带结构,有利于电荷分离和提取,还作为路易斯碱通过共享电子对与未配位的铅离子形成配位键,从而减少表面缺陷并最小化钙钛矿/CE界面处的复合损失,最终减轻填充因子(FF)损失。结果,FTO/SnO/MAPbI/MG + NiO/碳结构器件的功率转换效率(PCE)达到18.10%,与原始器件的15.17%相比显著提高了19.3%。本研究提出了一种通过利用源自煤的具有成本效益和环境可持续性的碳功能材料来提高C-PSC整体性能的新策略。