光催化
光伏系统
铅(地质)
材料科学
工程物理
光电子学
纳米技术
物理
电气工程
化学
地质学
工程类
催化作用
生物化学
地貌学
作者
Muskan Nabi,Sanika S. Padelkar,Jacek J. Jasieniak,Alexandr N. Simonov,Aftab Alam
出处
期刊:Physical review applied
[American Physical Society]
日期:2024-01-31
卷期号:21 (1)
标识
DOI:10.1103/physrevapplied.21.014063
摘要
The magnetic spin degrees of freedom in magnetic materials serve as an additional way to tune materials properties, thereby invoking a magneto-optical response. Herein, we report the magneto-optoelectronic properties of a family of lead-free magnetic double perovskites of the form ${\mathrm{Cs}}_{2}\mathrm{Ag}T{X}_{6}$ ($T=\mathrm{Sc},\mathrm{Ti},\mathrm{V},\mathrm{Cr},\mathrm{Mn},\mathrm{Fe},\mathrm{Co},\mathrm{Ni},\mathrm{Cu};X=\mathrm{Cl},\mathrm{Br},\mathrm{I}$). These provide an extremely fertile series, giving rise to potential candidate materials for photovoltaic applications. In conjunction with a high absorption coefficient and a high simulated power-conversion efficiency for photovoltaic applications, a few compounds in this series exhibit magnetic character useful for spintronic applications. The interaction between magnetism and light can have far-reaching effects on the photovoltaic properties as a consequence of the shift in the defect energy levels due to the Zeeman effect. This subsequently affects the recombination rate of minority carriers, and hence the photoconversion efficiency. Moreover, the distinct ferromagnetic and antiferromagnetic ordering driven by hybridization and the superexchange mechanism can play a significant role in breaking the time-reversal and/or inversion symmetry. Such a coalescence of magnetism and efficient optoelectronic response has the potential to trigger a magnetic/spin anomalous photovoltaic (nonlinear optical) effect in this ${\mathrm{Cs}}_{2}\mathrm{Ag}T{X}_{6}$ family. These insights can thus channelize the advancement of lead-free double perovskites in the magnetic/spin anomalous-photovoltaic-effect field as well.
科研通智能强力驱动
Strongly Powered by AbleSci AI