Zhou Haowei, Cao Yili, Khmelevskyi Sergii, Zhang Qinghua, Hu Shixin, Avdeev Maxim, Wang Chin-Wei, Zhou Rui, Yu Chengyi, Chen Xin, Li Qiheng, Miao Jun, Li Qiang, Lin Kun, Xing Xianran
Beijing Advanced Innovation Center for Materials Genome Engineering, Institute of Solid State Chemistry, University of Science and Technology Beijing, Beijing 100083, China.
Vienna Scientific Cluster Research Center, Technical University of Vienna, Operngasse 10, Vienna A-1040, Austria.
J Am Chem Soc. 2024 Jul 31;146(30):20770-20777. doi: 10.1021/jacs.4c04173. Epub 2024 Jul 22.
Exchange bias (EB) is a crucial property with widespread applications but particularly occurs by complex interfacial magnetic interactions after field cooling. To date, intrinsic zero-field-cooled EB (ZEB) has only emerged in a few bulk frustrated systems and their magnitudes remain small yet. Here, enabled by high temperature synthesis, we uncover a colossal ZEB field of 4.95 kOe via tuning compensated ferrimagnetism in a family of kagome metals, which is almost twice the magnitude of known materials. Atomic-scale structure, spin dynamics, and magnetic theory revealed that these compensated ferrimagnets originate from significant antiferromagnetic exchange interactions embedded in the holmium-iron ferrimagnetic matrix due to supersaturated preferential manganese doping. A random antiferromagnetic order of manganese sublattice sandwiched between ferromagnetic iron kagome bilayers accounts for such unconventional pinning. The outcome of the present study outlines disorder-induced giant bulk ZEB and coercivity in layered frustrated systems.
交换偏置(EB)是一种具有广泛应用的关键特性,但特别是在磁场冷却后通过复杂的界面磁相互作用而出现。迄今为止,本征零场冷却交换偏置(ZEB)仅在少数块状受挫系统中出现,其大小仍然很小。在这里,通过高温合成,我们通过调整一类戈薇金属中的补偿亚铁磁性,发现了4.95 kOe的巨大ZEB场,这几乎是已知材料大小的两倍。原子尺度结构、自旋动力学和磁理论表明,这些补偿亚铁磁体源于由于过饱和优先锰掺杂而嵌入钬 - 铁亚铁磁基体中的显著反铁磁交换相互作用。夹在铁磁铁戈薇双层之间的锰亚晶格的随机反铁磁序解释了这种非常规的钉扎现象。本研究结果概述了层状受挫系统中无序诱导的巨大块状ZEB和矫顽力。