Magnetic tunneling induced Weyl node annihilation in TaP
Abstract
Weyl nodes are topological objects in three-dimensional metals. Their topological property can be revealed by studying the high-field transport properties of a Weyl semimetal. While the energy of the lowest Landau band (LLB) of a conventional Fermi pocket always increases with magnetic field due to the zero point energy, the LLB of Weyl cones remains at zero energy unless a strong magnetic field couples the Weyl fermions of opposite chirality. In the Weyl semimetal TaP, we achieve such a magnetic coupling between the electron-like Fermi pockets arising from the W1 Weyl fermions. As a result, their LLBs move above chemical potential, leading to a sharp sign reversal in the Hall resistivity at a specific magnetic field corresponding to the W1 Weyl node separation. By contrast, despite having almost identical carrier density, the annihilation is unobserved for the hole-like pockets because the W2 Weyl nodes are much further separated. These key findings, corroborated by other systematic analyses, reveal the nontrivial topology of Weyl fermions in high-field measurements.
Keywords
Cite
@article{arxiv.1507.06301,
title = {Magnetic tunneling induced Weyl node annihilation in TaP},
author = {Cheng-Long Zhang and Su-Yang Xu and C. M. Wang and Ziquan Lin and Z. Z. Du and Cheng Guo and Chi-Cheng Lee and Hong Lu and Yiyang Feng and Shin-Ming Huang and Guoqing Chang and Chuang-Han Hsu and Haiwen Liu and Hsin Lin and Liang Li and Chi Zhang and Jinglei Zhang and Xin-Cheng Xie and Titus Neupert and M. Zahid Hasan and Hai-Zhou Lu and Junfeng Wang and Shuang Jia},
journal= {arXiv preprint arXiv:1507.06301},
year = {2017}
}
Comments
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