Wang Meng, Duan Jialong, Du Jian, Yang Xiya, Duan Yanyan, Zhang Tingting, Tang Qunwei
Institute of New Energy Technology, College of Information Science and Technology, Jinan University, Guangzhou 510632, PR China.
State Centre for International Cooperation on Designer Low-Carbon and Environmental Material (SCICDLCEM), School of Materials Science and Engineering, Zhengzhou University, Zhengzhou 450001, PR China.
ACS Appl Mater Interfaces. 2021 Mar 17;13(10):12091-12098. doi: 10.1021/acsami.1c00688. Epub 2021 Mar 4.
Tailored optimization of perovskite solar cells (PSCs) is a persistent objective to achieve the ultimate commercialization purpose, in which the electron/hole transport layer with thickness on the nanometer scale is generally required to maximize the charge collection and minimize the series resistance. Therefore, precise control on the fabrication technology of the charge transport layer is important. Herein, one-dimensional (1D) rutile TiO nanorod arrays with a thickness of 1.8 μm have been fabricated and employed as a potential electron extraction layer for high-efficiency all-inorganic CsPbBr PSCs for the first time. Arising from the sufficient carrier mobility, excellent conductivity, and superior charge extraction ability by means of regulating the donor concentration with nitrogen atoms, a champion efficiency of 8.50% has been achieved with excellent long-term stability after 50 days storage in air conditions, which is comparable to that of the 200 nm-thick TiO layer tailored device. The primary results demonstrate that the TiO layer with micrometer scale thickness is also feasible to effectively collect the photogenerated carriers and realize considerable solar-to-electric conversion ability, providing multifarious technologies to fabricate the electron extraction layer.
对钙钛矿太阳能电池(PSC)进行定制优化是实现最终商业化目标的一个长期追求,其中通常需要纳米级厚度的电子/空穴传输层,以实现电荷收集最大化并使串联电阻最小化。因此,精确控制电荷传输层的制造技术至关重要。在此,首次制备了厚度为1.8μm的一维(1D)金红石型TiO纳米棒阵列,并将其用作高效全无机CsPbBr PSC的潜在电子提取层。通过用氮原子调节施主浓度,该纳米棒阵列具有足够的载流子迁移率、优异的导电性和卓越的电荷提取能力,在空气条件下储存50天后实现了8.50%的冠军效率以及出色的长期稳定性,这与200nm厚TiO层定制器件的性能相当。初步结果表明,微米级厚度的TiO层也能够有效地收集光生载流子并实现可观的光电转换能力,为制备电子提取层提供了多种技术。