钙钛矿(结构)
材料科学
能量转换效率
半导体
太阳能电池
钙钛矿太阳能电池
格子(音乐)
光电子学
工程物理
化学物理
结晶学
物理
化学
声学
作者
Refiloe Innocencia Maphoto,Mogahabo Tebogo Morukuladi,Kemeridge Tumelo Malatji,Mallang Cliffton Masedi,Phuti E. Ngoepe
标识
DOI:10.1149/2162-8777/ac5eb6
摘要
Due to the outstanding power conversion efficiency (PCE), lightweight, flexible, and low manufacturing cost, perovskite solar cells (PSCs) attract a lot of attention as the most promising candidate for the next generation of solar cells. However, the issue of poor intrinsic stability of the absorber materials and operational stability of devices remains unsolved. In this study, first-principle calculations were performed on the CsPbX 3 (X = Br or I) perovskites to provide insight into the structural, mechanical, vibrational and electronic properties of CsPbBr 3 and CsPbI 3 for their applications as active layers of solar cells. It was found that the calculated lattice parameters are in good agreement with the experimental results. CsPbBr 3 and CsPbI 3 have negative energy of formation, which implies that the materials are thermodynamically stable. The calculated band structures indicate that CsPbBr 3 and CsPbI 3 are semiconductors with direct bandgaps along R-symmetry point. Furthermore, cluster expansion and simulations of Monte-Carlo were performed to identify new possible CsPbBr 1-x I x structures and evaluate the effect of temperature on the system. The ground-state search generated 26 new multi-component CsPbBr 1-x I x structures, and the temperature-profile showed that the system mixes well at ∼800 K. Thus, the phase stability insight is crucial for the development of these promising perovskite solar cells.
科研通智能强力驱动
Strongly Powered by AbleSci AI