Zhang Qianni, Zhu Weidong, Chen Dazheng, Zhang Zeyang, Lin Zhenhua, Chang Jingjing, Zhang Jincheng, Zhang Chunfu, Hao Yue
State Key Discipline Laboratory of Wide Band Gap Semiconductor Technology & Shaanxi Joint Key Laboratory of Graphene, School of Microelectronics , Xidian University , Xi'an 710071 , China.
ACS Appl Mater Interfaces. 2019 Jan 23;11(3):2997-3005. doi: 10.1021/acsami.8b17839. Epub 2019 Jan 11.
Inorganic halide perovskite CsPbIBr possesses the most balanced band gap and stability characters among all of the concerned analogs for carbon-based, all-inorganic solar cells that are free of any hole-transporting layers and noble-metal electrodes. Yet, the current CsPbIBr solar cells seem to deliver the lowest record efficiency. This is originally plagued by a serious energy loss ( E) in the cells, which thus limits their open-circuit voltages ( V) severely. Herein, we demonstrate a light-processing technology that can overcome this obstacle successfully, by enabling the full-coverage, pure-phase CsPbIBr films featured with large grains, high crystallinity, and preferential [100] grains orientation, along with favorable electronic structure. It is achieved by the exposure of CsPbIBr precursor film formed in a conventional one-step spin-coating route to a simulated AM 1.5 G illumination before thermal annealing. The resulting carbon-based, all-inorganic planar cells give an optimized power conversion efficiency (PCE) of 8.60% with the V of 1.283 V. Notably, such an impressive V stands the highest value among all of the previously reported CsPbIBr solar cells; hence, its PCE exceeds nearly all of them. Therefore, our work suggests a new route to further improve the efficiency of low-cost, stable, and simple-fabrication CsPbIBr solar cells.
无机卤化物钙钛矿CsPbIBr在所有无空穴传输层和贵金属电极的碳基全无机太阳能电池相关类似物中具有最平衡的带隙和稳定性。然而,目前的CsPbIBr太阳能电池的效率似乎是最低的记录。这最初受到电池中严重能量损失(E)的困扰,从而严重限制了它们的开路电压(V)。在此,我们展示了一种光处理技术,该技术能够通过制备具有大晶粒、高结晶度、优先[100]晶粒取向以及良好电子结构的全覆盖、纯相CsPbIBr薄膜,成功克服这一障碍。这是通过在传统的一步旋涂路线中形成的CsPbIBr前驱体薄膜在热退火之前暴露于模拟的AM 1.5 G光照下来实现的。由此得到的碳基全无机平面电池的优化功率转换效率(PCE)为8.60%,V为1.283 V。值得注意的是,如此令人印象深刻的V在所有先前报道的CsPbIBr太阳能电池中是最高值;因此,其PCE超过了几乎所有同类电池。所以,我们的工作为进一步提高低成本、稳定且制备简单的CsPbIBr太阳能电池的效率提供了一条新途径。