Shen Kai, Zhang Yu, Wang Xiaoqing, Ou Chizhu, Guo Fei, Zhu Hongbing, Liu Cong, Gao Yanyan, Schropp Ruud E I, Li Zhiqiang, Liu Xianhu, Mai Yaohua
Institute of New Energy Technology College of Information Science and Technology Jinan University Guangzhou 510632 China.
Institute of Photovoltaics Hebei University Baoding 071002 China.
Adv Sci (Weinh). 2020 Jun 30;7(16):2001013. doi: 10.1002/advs.202001013. eCollection 2020 Aug.
Environmentally benign and potentially cost-effective SbSe solar cells have drawn much attention by continuously achieving new efficiency records. This article reports a compatible strategy to enhance the efficiency of planar n-i-p SbSe solar cells through SbSe surface modification and an architecture with oriented 1D van der Waals material, trigonal selenium (t-Se). A seed layer assisted successive close spaced sublimation (CSS) is developed to fabricate highly crystalline SbSe absorbers. It is found that the SbSe absorber exhibits a Se-deficient surface and negative surface band bending. Reactive Se is innovatively introduced to compensate the surface Se deficiency and form an (101) oriented 1D t-Se interlayer. The p-type t-Se layer promotes a favored band alignment and band bending at the SbSe/t-Se interface, and functionally works as a surface passivation and hole transport material, which significantly suppresses interface recombination and enhances carrier extraction efficiency. An efficiency of 7.45% is obtained in a planar SbSe solar cell in superstrate n-i-p configuration, which is the highest efficiency for planar SbSe solar cells prepared by CSS. The all-inorganic SbSe solar cell with t-Se shows superb stability, retaining ≈98% of the initial efficiency after 40 days storage in open air without encapsulation.
环境友好且具有潜在成本效益的锑硒(SbSe)太阳能电池通过不断创造新的效率记录而备受关注。本文报道了一种兼容策略,通过对SbSe表面进行改性以及采用具有取向一维范德华材料三角硒(t-Se)的结构来提高平面n-i-p SbSe太阳能电池的效率。开发了一种种子层辅助连续近距离升华(CSS)方法来制备高度结晶的SbSe吸收层。研究发现,SbSe吸收层呈现出硒缺乏的表面和负的表面能带弯曲。创新性地引入活性硒以补偿表面硒缺乏,并形成(101)取向的一维t-Se中间层。p型t-Se层促进了SbSe/t-Se界面处有利的能带排列和能带弯曲,并在功能上作为表面钝化和空穴传输材料,显著抑制了界面复合并提高了载流子提取效率。在超strate n-i-p结构的平面SbSe太阳能电池中获得了7.45%的效率,这是通过CSS制备的平面SbSe太阳能电池的最高效率。具有t-Se的全无机SbSe太阳能电池表现出卓越的稳定性,在未封装的情况下于空气中储存40天后仍保留约98%的初始效率。