中国物理B ›› 2024, Vol. 33 ›› Issue (10): 107304-107304.doi: 10.1088/1674-1056/ad7728
Yuqing Huang(黄玉清)1, Chaoyu Guo(郭钞宇)1, Lei Gao(高蕾)3, Wenna Du(杜文娜)4, Haotian Zheng(郑浩天)1, Da Wu(吴达)1, Zhengpu Zhao(赵正朴)1, Chu-Wei Zhang(张楚惟)1, Qin Wang(王钦)1, Xin-Feng Liu(刘新风)4,5, Qingfeng Yan(严清峰)3, and Ying Jiang(江颖)1,2,6,†
Yuqing Huang(黄玉清)1, Chaoyu Guo(郭钞宇)1, Lei Gao(高蕾)3, Wenna Du(杜文娜)4, Haotian Zheng(郑浩天)1, Da Wu(吴达)1, Zhengpu Zhao(赵正朴)1, Chu-Wei Zhang(张楚惟)1, Qin Wang(王钦)1, Xin-Feng Liu(刘新风)4,5, Qingfeng Yan(严清峰)3, and Ying Jiang(江颖)1,2,6,†
摘要: The next-generation hot-carrier solar cells, which can overcome the Shockley-Queisser limit by harvesting excess energy from hot carriers, are receiving increasing attention. Lead halide perovskite (LHP) materials are considered as promising candidates due to their exceptional photovoltaic properties, good stability and low cost. The cooling rate of hot carriers is a key parameter influencing the performance of hot-carrier solar cells. In this work, we successfully detected hot carrier dynamics in operando LHP devices using the two-pulse photovoltage correlation technique. To enhance the signal-to-noise ratio, we applied the delay-time modulation method instead of the traditional power modulation. This advancement allowed us to detect the intraband hot carrier cooling time for the organic LHP CH$_{3}$NH$_{3}$PbBr$_{3}$, which is as short as 0.21 ps. In comparison, the inorganic Cs-based LHP CsPbBr$_{3}$ exhibited a longer cooling time of around 0.59 ps due to different phonon contributions. These results provide us new insights into the optimal design of hot-carrier solar cells and highlight the potential of LHP materials in advancing solar cell technology.
中图分类号: (Electron states at surfaces and interfaces)