材料科学
钙钛矿(结构)
光电子学
光伏
表面等离子共振
能量转换效率
等离子体子
光伏系统
纳米结构
量子效率
量子点
局域表面等离子体子
钙钛矿太阳能电池
电极
等离子太阳电池
吸收(声学)
表面等离子体子
纳米技术
共振(粒子物理)
结晶
混合太阳能电池
太阳能电池
光活性层
航程(航空)
电压
有机太阳能电池
纳米-
晶界
作者
Rongyi Na,Wenhui Zhang,Ruoqian Gao,Qiuxu Lin,Geyu Lu,Liang Shen,Hongyu Bian,Xishuang Liang
标识
DOI:10.1021/acsami.5c17502
摘要
Carbon-electrode Br-based perovskite solar cells (PSCs) show potential application because of high open-circuit voltage and stability. Utilizing the localized surface plasmon resonance (LSPR) effect of metal-semiconductor core-shell nanostructures may alter the light absorption range of PSCs and enhance their short-circuit current density. In this study, an antisolvent-mediated strategy for interfacial modification at both perovskite grain boundaries and perovskite/carbon electrode interfaces was developed using Mo@MoS2 core-shell nanospheres. By tuning the Mo:MoS2 ratio, we achieved concurrent control of crystallization dynamics and photon management in MAPbBr3 solar cells. The modified devices achieved significant improvements in external quantum efficiency within a wavelength range above 525 nm, showcasing improved spectral utilization. An average power conversion efficiency of 9.2% (best of 9.62%) was obtained with an optimized plasmonic effect, representing an improvement of 12% over reference cells. This work demonstrates the potential of LSPR core-shell nanostructures to unlock new efficiencies in stable, carbon-electrode perovskite photovoltaics by tailored interfacial and optical engineering.
科研通智能强力驱动
Strongly Powered by AbleSci AI