Fan Ping, Chen Guo-Jie, Chen Shuo, Zheng Zhuang-Hao, Azam Muhammad, Ahmad Nafees, Su Zheng-Hua, Liang Guang-Xing, Zhang Xiang-Hua, Chen Zhi-Gang
Shenzhen Key Laboratory of Advanced Thin Films and Applications, Key Laboratory of Optoelectronic Devices and Systems, College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, P. R. China.
Univ Rennes, CNRS, ISCR (Institut des Sciences Chimiques de Rennes) UMR 6226, Rennes F-35000, France.
ACS Appl Mater Interfaces. 2021 Oct 6;13(39):46671-46680. doi: 10.1021/acsami.1c13223. Epub 2021 Sep 27.
SbSe, one of the most desirable absorption materials for next-generation thin-film solar cells, has an excellent photovoltaic characteristic. The [hk1]-oriented (quasi-vertically oriented) SbSe thin film is more beneficial for promoting efficient carrier transport than the [hk0]-oriented SbSe thin film. Controlling thin-film orientation remains the main obstacle to the further improvement in the efficiency of SbSe-based solar cells. In this work, the controlled [hk0] or [hk1] orientation of the SbSe precursor is readily adjusted by tuning the substrate temperature and the distance between the source and the sample in close-space sublimation (CSS). Well-crystallized stoichiometric SbSe thin films with the desired orientation and large crystal grains are successfully prepared after selenization. SbSe thin-film solar cells in a substrate configuration of glass/Mo/SbSe/CdS/ITO/Ag are fabricated with a power conversion efficiency of 4.86% with a record open-circuit voltage () of 509 mV. The significant improvement in is closely related to the quasi-vertically oriented SbSe absorber layer with reduced deep-level defect density in the bulk and defect passivation at the SbSe/CdS heterojunction. This work indicates that CSS and selenization show a remarkable potential for the fabrication of high-efficiency SbSe solar cells.
SbSe是下一代薄膜太阳能电池最理想的吸收材料之一,具有优异的光伏特性。与[hk0]取向的SbSe薄膜相比,[hk1]取向(准垂直取向)的SbSe薄膜更有利于促进载流子的高效传输。控制薄膜取向仍然是进一步提高基于SbSe的太阳能电池效率的主要障碍。在这项工作中,通过在近距离升华(CSS)中调节衬底温度和源与样品之间的距离,可以很容易地调整SbSe前驱体的[hk0]或[hk1]取向。硒化后成功制备出具有所需取向和大晶粒的结晶良好的化学计量比SbSe薄膜。制备了玻璃/Mo/SbSe/CdS/ITO/Ag衬底结构的SbSe薄膜太阳能电池,功率转换效率为4.86%,开路电压()创纪录地达到509 mV。开路电压的显著提高与准垂直取向的SbSe吸收层密切相关,该吸收层降低了体中的深能级缺陷密度,并在SbSe/CdS异质结处实现了缺陷钝化。这项工作表明,CSS和硒化在制造高效SbSe太阳能电池方面具有显著潜力。