Abstract

<sec>In recent years, organic-inorganic hybrid perovskite solar cells have become a research hotspot in the photovoltaic field because of their excellent power conversion efficiency. However, this hybrid perovskite material's intrinsic instability and the harsh preparation environment limit its further commercial application. All-inorganic CsPbBr<sub>3</sub> perovskite materials have attracted much attention because of their good stability, low cost and can be prepared in an atmospheric environment, showing great application potential. The controllable preparation and growth kinetics of CsPbBr<sub>3</sub> materials need to be further studied, and the conversion efficiency of photovoltaic devices is still low. Considering the instability caused by traditional organic hole transport materials and their high preparation cost, this work focuses on the systematical studies of CsPbBr<sub>3</sub> all-inorganic perovskite cells without a hole transport layer. Growth kinetics material of CsPbBr<sub>3</sub> is controlled by adding 2-phenylethylamine bromide to precursor solution<sub>.</sub> The main research contents and results are described as follows.</sec><sec>Based on multi-step spin-coating preparation of CsPbBr<sub>3</sub> perovskite films, the perovskite cell preparation method is studied, and the critical process parameters including the spin-coating PbBr<sub>2</sub>, amount and number of spin-coating of CsBr, substrate preheating temperature, and the annealing temperature, are optimized. The optimization tests show that the optimal spin-coating of CsBr is obtained by being optimized five times and the spin-coating PbBr<sub>2</sub> is conducted in the atmospheric environment. The optimal preheating temperature of the substrate is 80 ℃, and the optimal annealing temperature is 100 ℃. The perovskite films prepared under this condition are compact, each with a continuous high phase purity and good crystallization performance.</sec><sec>The PbBr<sub>2</sub> in DMF is first adopted and the 2-phenylethylamine bromide (PEABr) solution is added to regulate the CsPbBr<sub>3</sub> crystalline quality of the film. The effects of PEABr on the perovskite crystallization process and device performance are systematically investigated. The results show that the introduction of PEABr can effectively optimize the CsPbBr<sub>3</sub>. The crystalline properties of the two-dimensional perovskite materials can improve the grain boundaries and improve their transport properties. The prepared perovskite solar cell with PEABr shows the highest power conversion efficiency of 8.25%, and it can maintain the efficiency of more than 90% when being stored for 1500 h under the condition of no encapsulation. Finally, stable, efficient and low-cost all-inorganic CsPbBr<sub>3</sub> solar cells without a hole layer are obtained.</sec>

Highlights

  • Schematic illustration of FTO/TiO2/CsPbBr3/carbon structure cells prepared by multi-step spin-coating method

  • XRD patterns of CsPbBr3 films prepared by spincoating different times of CsBr

  • Parameters of solar cells prepared by spin-coating different times of CsBr

Read more

Summary

Introduction

文中制备的全无机 CsPbBr3 钙钛矿太阳能电 池以二氧化钛 (TiO2) 为电子传输层材料, 以溴化 铅 (PbBr2) 与溴化铯 (CsBr) 为钙钛矿层的基本材 料, 使用碳 (Carbon) 为背电极. S 技有限公司购入; 钛酸异丙酯 (95%)、无水乙醇 s (无水级)、甲醇 (色谱级)、N’N 二甲基甲酰胺 (无 e 水级) 由阿拉丁试剂 (上海) 有限公司购入; 溴化 r 铅 ( ≥ 99.9%)、溴化铯 ( ≥ 99.9%) 由西安宝莱特 图 1 多步旋涂法制备 FTO/TiO2/CsPbBr3/carbon 结构电池流程图 Fig. 1. Schematic illustration of FTO/TiO2/CsPbBr3/carbon structure cells prepared by multi-step spin-coating method. 图 2 旋涂不同 CsBr 次数所制备的 CsPbBr3 薄膜的 XRD 图谱 Fig. 2.

Results
Conclusion
Full Text
Published version (Free)

Talk to us

Join us for a 30 min session where you can share your feedback and ask us any queries you have

Schedule a call