Numerical simulation of all inorganic CsPbIBr2 perovskite solar cells with diverse charge transport layers using DFT and SCAPS-1D frameworks

材料科学 钙钛矿(结构) 带隙 兴奋剂 非阻塞I/O 能量转换效率 光电子学 密度泛函理论 电荷(物理) 结晶学 计算化学 化学 物理 催化作用 生物化学 量子力学
作者
Dibyajyoti Saikia,Chayan Das,Anupam Chetia,Atanu Betal,Satyajit Sahu
出处
期刊:Physica Scripta [IOP Publishing]
卷期号:99 (9): 095946-095946 被引量:4
标识
DOI:10.1088/1402-4896/ad6aa8
摘要

Abstract All inorganic CsPbX 3 perovskites (X = Br and I) are excellent candidates for stable and efficient perovskite solar cells (PSCs). Among them, CsPbIBr 2 demonstrated the most balanced characteristics in terms of band gap and stability. Nevertheless, the power conversion efficiency (PCE) of CsPbIBr 2 -based solar cells is still far from that of Hybrid PSCs, and more research is required in this aspect. Herein, DFT and SCAPS-1D frameworks are employed to explore the optimized device configurations of CsPbIBr 2 PSCs. DFT is used to explore the structural and optoelectronic characteristics of CsPbIBr 2 , while SCAPS-1D is employed to examine various device structures of CsPbIBr 2 -based PSCs. The band structure demonstrated the direct band gap nature of CsPbIBr 2 with a band gap of 2.12 eV. Moreover, we have used TiO 2 , SnO 2 , ZnO, WS 2 , IGZO, CeO 2 , In 2 S 3 , and CdS as ETLs, and Cu 2 O, CuI, MoO 3 , NiO, CuSCN, CuSbS 2 , CBTS, CFTS, and CuO as HTLs for identifying the best ETL/CsPbIBr 2 /HTL configurations. Among 72 device combinations, eight sets of PSCs are identified as the most efficient configurations. In addition, the influence of various parameters like the thickness of various layers, doping concentration, perovskite defect density, ETLs and interfaces, series resistances, shunt resistances, and temperature on device performance have been comprehensively studied. The results demonstrate Cu 2 O as the best HTL for CsPbIBr 2 with each ETL, and PSC with device structure ITO/WS 2 /CsPbIBr 2 /Cu 2 O/C exhibited the highest PCE of 16.53%. This comprehensive investigation will provide new path for the development of highly efficient all-inorganic CsPbIBr 2 solar cells.

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