Huang Like, Zhang Danli, Bu Shixiao, Peng Ruixiang, Wei Qiang, Ge Ziyi
Ningbo Institute of Materials Technology and Engineering (NIMTE) Chinese Academy of Sciences (CAS) Ningbo 315201 China.
Center of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 P. R. China.
Adv Sci (Weinh). 2020 Jan 29;7(6):1902656. doi: 10.1002/advs.201902656. eCollection 2020 Mar.
Efficient electron transport layer-free perovskite solar cells (ETL-free PSCs) with cost-effective and simplified design can greatly promote the large area flexible application of PSCs. However, the absence of ETL usually leads to the mismatched indium tin oxide (ITO)/perovskite interface energy levels, which limits charge transfer and collection, and results in severe energy loss and poor device performance. To address this, a polar nonconjugated small-molecule modifier is introduced to lower the work function of ITO and optimize interface energy level alignment by virtue of an inherent dipole, as verified by photoemission spectroscopy and Kelvin probe force microscopy measurements. The resultant barrier-free ITO/perovskite contact favors efficient charge transfer and suppresses nonradiative recombination, endowing the device with enhanced open circuit voltage, short circuit current density, and fill factor, simultaneously. Accordingly, power conversion efficiency increases greatly from 12.81% to a record breaking 20.55%, comparable to state-of-the-art PSCs with a sophisticated ETL. Also, the stability is enhanced with decreased hysteresis effect due to interface defect passivation and inhibited interface charge accumulation. This work facilitates the further development of highly efficient, flexible, and recyclable ETL-free PSCs with simplified design and low cost by interface electronic structure engineering through facile electrode modification.
具有经济高效且简化设计的无电子传输层钙钛矿太阳能电池(ETL-free PSCs)能够极大地推动PSCs的大面积柔性应用。然而,缺少ETL通常会导致氧化铟锡(ITO)/钙钛矿界面能级不匹配,这限制了电荷转移和收集,并导致严重的能量损失和较差的器件性能。为了解决这个问题,引入了一种极性非共轭小分子改性剂,以降低ITO的功函数,并借助固有偶极优化界面能级排列,这已通过光电子能谱和开尔文探针力显微镜测量得到验证。由此产生的无势垒ITO/钙钛矿接触有利于高效电荷转移并抑制非辐射复合,同时赋予器件更高的开路电压、短路电流密度和填充因子。相应地,功率转换效率从12.81%大幅提高到破纪录的20.55%,与具有复杂ETL的先进PSCs相当。此外,由于界面缺陷钝化和抑制界面电荷积累,滞后效应减小,稳定性得到增强。这项工作通过简便的电极改性进行界面电子结构工程,促进了具有简化设计和低成本的高效、柔性且可回收的无ETL PSCs的进一步发展。