超级交换
反铁磁性
凝聚态物理
自旋电子学
材料科学
卤化物
钙钛矿(结构)
半导体
联轴节(管道)
磁性半导体
铁磁性
感应耦合
化学物理
结晶学
化学
无机化学
光电子学
物理
量子力学
冶金
作者
Kunpot Mopoung,Weihua Ning,Muyi Zhang,Fuxiang Ji,Kingshuk Mukhuti,Hans Engelkamp,Peter C. M. Christianen,Utkarsh Singh,Johan Klarbring,S. I. Simak,Igor A. Abrikosov,Feng Gao,I. A. Buyanova,Weimin Chen,Yuttapoom Puttisong
标识
DOI:10.1021/acs.jpcc.3c08129
摘要
Solution-processable semiconductors with antiferromagnetic (AFM) order are attractive for future spintronics and information storage technology. Halide perovskites containing magnetic ions have emerged as multifunctional materials, demonstrating a cross-link between structural, optical, electrical, and magnetic properties. However, stable optoelectronic halide perovskites that are antiferromagnetic remain sparse, and the critical design rules to optimize magnetic coupling still must be developed. Here, we combine the complementary magnetometry and electron-spin-resonance experiments, together with first-principles calculations to study the antiferromagnetic coupling in stable Cs2(Ag:Na)FeCl6 bulk semiconductor alloys grown by the hydrothermal method. We show the importance of nonmagnetic monovalence ions at the BI site (Na/Ag) in facilitating the superexchange interaction via orbital hybridization, offering the tunability of the Curie-Weiss parameters between -27 and -210 K, with a potential to promote magnetic frustration via alloying the nonmagnetic BI site (Ag:Na ratio). Combining our experimental evidence with first-principles calculations, we draw a cohesive picture of the material design for B-site-ordered antiferromagnetic halide double perovskites.
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