Jung Yonghoon, Yoon Kyung Tak, Park Junhyoung, Choi Hanseul, Kim Seongheon, Kwak Hee Dong, Cho Seong Ho, Kim Taehoon, Lee Jieun, Lee Yun Seog
Department of Mechanical Engineering, Seoul National University, Seoul, 08826, Republic of Korea.
Center for Nano Science and Technology, Istituto Italiano di Tecnologia, Milano, 20134, Italy.
Small. 2024 Dec;20(52):e2405229. doi: 10.1002/smll.202405229. Epub 2024 Aug 29.
An electron transport layer (ETL) for highly efficient perovskite solar cells (PSCs) should exhibit superior electrical transport properties and have its band levels aligned with interfacing layers to ensure efficient extraction of photo-generated carriers. Nitrogen-doped TiO (TiO:N) is considered a promising ETL because it offers higher electrical conductivity compared to conventional ETLs made from spray-pyrolyzed TiO. However, the application of highly doped TiO:N in PSCs is often limited by the misalignment of energy band levels with adjacent layers and reduced optical transparency. In this study, a novel approach is introduced to enhance the charge transport characteristics and accurately align the electronic band alignment of TiO:N layer through nanoscale doping level grading, achieved through the pulsed laser deposition (PLD) technique. The TiO:N ETL with a graded doping profile can combine characteristics of both highly doped and lightly doped phases on each side. Furthermore, a nanoscale doping gradation, employing an ultrathin sub-layer structure with graded doping levels, creates a smoothly cascading band-level alignment that bridges the adjacent layers, enhancing the transport of photo-generated carriers. Consequently, this method leads to a substantial increase in the power conversion efficiency (PCE), exceeding 22%, which represents a relative improvement of 11% compared to traditional spray-pyrolyzed TiO-based PSCs.
用于高效钙钛矿太阳能电池(PSC)的电子传输层(ETL)应具有优异的电传输性能,并且其能带水平与界面层对齐,以确保光生载流子的有效提取。氮掺杂二氧化钛(TiO:N)被认为是一种很有前景的ETL,因为与由喷雾热解TiO制成的传统ETL相比,它具有更高的电导率。然而,高掺杂TiO:N在PSC中的应用常常受到与相邻层能带水平不对齐以及光学透明度降低的限制。在本研究中,引入了一种新方法,通过脉冲激光沉积(PLD)技术实现纳米级掺杂水平分级,以增强TiO:N层的电荷传输特性并精确对齐其电子能带排列。具有分级掺杂分布的TiO:N ETL可以在每一侧结合高掺杂和轻掺杂相的特性。此外,采用具有分级掺杂水平的超薄子层结构的纳米级掺杂梯度,创建了一个平滑级联的能带水平排列,连接相邻层,增强了光生载流子的传输。因此,该方法导致功率转换效率(PCE)大幅提高,超过22%,与传统喷雾热解TiO基PSC相比,相对提高了11%。