Design, synthesis, and physical properties of the intergrowth compound EuCuZnAs
arXiv:2509.17761 · doi:10.1103/1w4z-y1fc
Abstract
The rational combination of existing magnetic topological compounds presents a promising route for designing new topological materials. We report the synthesis and comprehensive characterization of the layered quaternary intergrowth compound EuCuZnAs, which combines structural units of two known magnetic topological materials, EuCuAs and EuZnAs. EuCuZnAs exhibits an antiferromagnetic ground state with successive magnetic transitions: quasi-two-dimensional ordering at \,K, long-range antiferromagnetic ordering at \,K, and spin-reorientation at \,K. The stepwise magnetic transitions manifest as plateau-like anomalies in the heat capacity. These transitions originate from multiple superexchange pathways and periodic variation of interplane Eu-Eu distances in the intergrowth structure. Charge transport shows a pronounced resistivity increase above followed by minimal change below the ordering temperature. Magnetic fields rapidly suppress this resistivity rise, yielding significant negative magnetoresistance. Remarkably, EuCuZnAs inherits the nonlinear anomalous Hall effect characteristic of its parent compounds. Energy evaluations of collinear spin configurations reveal a lowest-energy state with ferromagnetic coupling between Eu planes in EuCuAs units while maintaining antiferromagnetic coupling within EuZnAs units. The corresponding electronic structure displays potentially topologically nontrivial features. Our work demonstrates the efficacy of structural hybridization for discovering novel magnetic topological materials and establishes a general strategy for materials discovery.
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