反铁磁性
铁磁性
磁化
凝聚态物理
铁磁性
离子
电子顺磁共振
磁化率
化学
大气温度范围
材料科学
结晶学
核磁共振
磁场
物理
量子力学
有机化学
气象学
作者
Alimujiang Yalikun,Yanhong Wang,Nian Shi,Yiwen Chen,Hao Huang,Hyun‐Joo Koo,Zhongwen Ouyang,Zhengcai Xia,Reinhard K. Kremer,Myung‐Hwan Whangbo,Hongcheng Lu
标识
DOI:10.1021/acs.chemmater.4c01294
摘要
We prepared a new polar layered quantum magnet Ba2Cu3(SeO3)4F2, by a combined use of F– and pyramidal SeO32– anions, determined its crystal structure by X-ray diffraction, and characterized its magnetic properties by magnetization, electron spin resonance (ESR) and specific heat measurements, and by density functional theory calculations. The title compound has first experimentally reported bitriangular chains of Cu2+ ions aligned along the b direction to form layers parallel to the ab plane, and these layers are separated by Ba2+ ions. The magnetic susceptibility data reveal that, despite strong predominant antiferromagnetic intrachain interactions indicated by the large negative Weiss temperature θ of −143.9 K within bitriangular chains, no long-range order occurs down to 2 K. The latter, further confirmed by the specific heat measurements, is attributed to the extremely weak interlayer interaction. The spins in each bitriangular chain become ferrimagnetically ordered to exhibit a 1/3-magnetization plateau, which persists at least up to 30 T. This reveals that each bitriangular chain acts as an S = 1/2 entity at low temperatures, as observed from the decrease of the effective magnetic moment Peff from 3.67 μB in the high temperature range to 1.89 μB in the low temperature range, equivalently, from three free Cu2+ ions to only one effective Cu2+ ion per formula unit. In each layer of Ba2Cu3(SeO3)4F2, the interaction between adjacent ferrimagnetic chains is ferromagnetic rather than antiferromagnetic, contrary to the observations in other reported cases.
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