| Literature DB >> 32613655 |
Xinbo Yang1,2, Yuanbao Lin2, Jiang Liu2, Wenzhu Liu3, Qunyu Bi2, Xin Song2, Jingxuan Kang2, Fuzong Xu2, Lujia Xu2, Mohamed N Hedhili4, Derya Baran2, Xiaohong Zhang5, Thomas D Anthopoulos2, Stefaan De Wolf2.
Abstract
High-quality carrier-selective contacts with suitable electronic properties are a prerequisite for photovoltaic devices with high power conversion efficiency (PCE). In this work, an efficient electron-selective contact, titanium oxynitride (TiOx Ny ), is developed for crystalline silicon (c-Si) and organic photovoltaic devices. Atomic-layer-deposited TiOx Ny is demonstrated to be highly conductive with a proper work function (4.3 eV) and a wide bandgap (3.4 eV). Thin TiOx Ny films simultaneously provide a moderate surface passivation and enable a low contact resistivity on c-Si surfaces. By implementation of an optimal TiOx Ny -based contact, a state-of-the-art PCE of 22.3% is achieved for a c-Si solar cell featuring a full-area dopant-free electron-selective contact. Simultaneously, conductive TiOx Ny is proven to be an efficient electron-transport layer for organic photovoltaic (OPV) devices. A remarkably high PCE of 17.02% is achieved for an OPV device with an electron-transport TiOx Ny layer, which is superior to conventional ZnO-based devices with a PCE of 16.10%. Atomic-layer-deposited TiOx Ny ETL on a large area with a high uniformity may help accelerate the commercialization of emerging solar technologies.Entities:
Keywords: electron-selective contacts; organic solar cells; passivating contacts; silicon solar cells; titanium oxynitride
Year: 2020 PMID: 32613655 DOI: 10.1002/adma.202002608
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849