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arXiv · 2609.12452

Enhanced anomalous Nernst effect in Pr-doped kagome and honeycomb magnet LaCo$_5$

Abstract

In this work, we report the successful synthesis of La$_{1-x}$Pr$_x$Co$_5$ ($x = 0.09, 0.21, 0.45$) single crystals. Magnetic field-dependent magnetization measurements reveal that Pr substitution induces negligible changes in the magnetic properties of LaCo$_5$, with the ferromagnetic ordering predominantly governed by the Co sublattices. Remarkably, the doped systems exhibit significant enhancements in the anomalous Nernst effect. At 300~K, the anomalous Nernst thermopower $S^A_{yx}$ reaches 6.5~$\mathrm{μV/K}$ in La$_{0.55}$Pr$_{0.45}$Co$_5$, corresponding to a $\sim$ 40 \% enhancement compared to the parent compound. This significant improvement can be predominantly attributed to Pr-doping-induced Fermi level modification, which directly leads to a redistribution of Berry curvature across the Fermi surface. This work highlights the effectiveness of Pr doping in boosting the anomalous Nernst effect of La$_{1-x}$Pr$_x$Co$_5$, offering a practical strategy to design advanced materials for room-temperature energy-harvesting technologies and high-efficiency thermal sensing devices.

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Zheng Li, Yueyang Wu, Tianhao Li, Jun-jian Mi, Shu-Xiang Li, Jiang Ma, Qian Tao, Xiaofeng Xu, Sheng Xu, Zhu-An Xu. 2026-09-11. Enhanced anomalous Nernst effect in Pr-doped kagome and honeycomb magnet LaCo$_5$. https://arxiv.org/abs/2609.12452

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