Li Bin, Rui Yichuan, Xu Jingli, Wang Yuanqiang, Yang Jingxia, Zhang Qinghong, Müller-Buschbaum Peter
College of Chemistry and Chemical Engineering, Shanghai University of Engineering Science, Shanghai 201620, PR China.
College of Chemistry and Chemical Engineering, Shanghai University of Engineering Science, Shanghai 201620, PR China.
J Colloid Interface Sci. 2020 Aug 1;573:78-86. doi: 10.1016/j.jcis.2020.03.119. Epub 2020 Mar 30.
Inorganic p-type materials show great potential as the hole transport layer in perovskite solar cells with the merits of low costs and enhanced chemical stability. As a p-type material, cobalt oxide (CoO) has received so far not that level of attention despite its high hole mobility. Herein, solution-processed p-type CoO nanocrystalline films are developed for inverted mixed perovskite solar cells. The ultrafine CoO nanocrystals are synthesized via an oil phase method, which are subsequently treated by a ligand exchange process using pyridine solvent to remove the long alkyl chains covering the nanocrystals. From this homogeneous colloidal solution CoO films are obtained, which exhibit a smooth and pin-hole free surface morphology with high transparency and good conductivity. The ultraviolet photoelectron spectrum also indicates that the energy levels of the CoO film match well with the mixed perovskite Cs(FAMA)(IBr). Inverted solar cells based on crystalline CoO films with ligand exchange show a reasonable energy conversion efficiency, whereas devices based on CoO films without ligand exchange suffer from a strong S-shape JV-characteristic. Thus, the crystalline CoO films are foreseen to pave a new way of inorganic hole transport materials in the fields of perovskite solar cells.
无机p型材料作为钙钛矿太阳能电池中的空穴传输层具有巨大潜力,具有低成本和增强化学稳定性的优点。作为一种p型材料,氧化钴(CoO)尽管具有高空穴迁移率,但迄今为止尚未受到如此程度的关注。在此,开发了用于倒置混合钙钛矿太阳能电池的溶液法制备的p型CoO纳米晶薄膜。通过油相法合成了超细CoO纳米晶体,随后使用吡啶溶剂通过配体交换过程对其进行处理,以去除覆盖在纳米晶体上的长烷基链。由此获得了CoO薄膜的均匀胶体溶液,其呈现出光滑且无针孔的表面形态,具有高透明度和良好的导电性。紫外光电子能谱还表明,CoO薄膜的能级与混合钙钛矿Cs(FAMA)(IBr)匹配良好。基于经过配体交换的结晶CoO薄膜的倒置太阳能电池表现出合理的能量转换效率,而基于未经配体交换的CoO薄膜的器件则具有强烈的S形电流-电压特性。因此,可以预见结晶CoO薄膜将为钙钛矿太阳能电池领域中的无机空穴传输材料开辟一条新途径。