自旋电子学
材料科学
凝聚态物理
铁磁性
磁性
反铁磁性
等结构
量子隧道
磁电阻
磁性半导体
旋转
电阻率和电导率
量子
热传导
纳米电子学
磁化
磁铁
密度泛函理论
费米能级
光电子学
磁各向异性
铁磁材料性能
纳米技术
工作(物理)
电导率
导电体
顺磁性
磁场
作者
Huilin Qing,Brian G. Diamond,Joseph Y. M. Chan,Christopher H. Hendon,W. Li,Katherine A. Mirica
摘要
ABSTRACT The integration of tunable magnetic properties and electrical conductivity within a single material presents significant opportunities for spintronic applications and quantum information processing. This paper describes the first systematic investigation of electrical conduction and magnetism in four novel isostructural electrically conductive metal−organic frameworks (cMOFs), Ln‐HHTP (Ln = Sm, Eu, Gd, Tb), constructed using lanthanide ions and hexahydroxytriphenylene (HHTP) ligands. These materials show tunable semiconducting properties arising from efficient interlayer charge transport, which can be modulated by the density of states of the metal centers. Ln‐HHTP cMOFs exhibit different magnetic properties, with magnetic interactions varying from antiferromagnetism in Tb‐HHTP to ferromagnetism in Gd‐HHTP and Sm‐HHTP. The magnetic properties in Ln‐HHTP are modulated by single‐ion anisotropies of Ln 3+ spins and inherent geometric frustration within the kagome lattice. Moreover, Gd‐HHTP and Tb‐HHTP demonstrate robust quantum tunneling of magnetization. This work advances the understanding of cMOF magnets and underscores their potential as tunable platforms for next‐generation spintronic and quantum technologies.
科研通智能强力驱动
Strongly Powered by AbleSci AI