AI Article Synopsis

  • Exchange bias (EB) is an important magnetic property that arises from complex interactions after being cooled in a magnetic field, with the intrinsic zero-field-cooled (ZEB) variant found in only a few materials.
  • Researchers have discovered a significant ZEB field of 4.95 kOe in a specific group of kagome metals by optimizing ferrimagnetism, which is nearly double that of previously known materials.
  • The team showed that the giant ZEB effect comes from strong antiferromagnetic interactions within a matrix enriched by manganese, leading to a unique magnetic structure that contributes to high coercivity in these materials.

Article Abstract

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.

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Source
http://dx.doi.org/10.1021/jacs.4c04173DOI Listing

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