Magnetism-induced topological transition in EuAs3
Erjian Cheng, Wei Xia, Xianbiao Shi, Chengwei Wang, Chuanying Xi,, Shaowen Xu, Darren C. Peets, Linshu Wang, Hao Su, Li Pi, Wei Ren, Xia Wang,, Na Yu, Yulin Chen, Weiwei Zhao, Zhongkai Liu, Yanfeng Guo, Shiyan Li

TL;DR
This study demonstrates a magnetism-induced topological transition in EuAs₃, revealing a switch from a nodal-line semimetal to a topological massive Dirac metal, with significant implications for topological and magnetic interplay.
Contribution
First comprehensive experimental and theoretical investigation showing magnetic field-driven topological phase transition in EuAs₃, including ARPES, transport, and band calculations.
Findings
Identified a transition from a nodal-line semimetal to a massive Dirac metal in EuAs₃.
Observed large magnetoresistance and chiral anomaly effects confirming topological properties.
Discovered temperature-induced Lifshitz transition and new topologically protected bands.
Abstract
The nature of the interaction between magnetism and topology in magnetic topological semimetals remains mysterious, but may be expected to lead to a variety of novel physics. We present band calculations, electrical transport and angle-resolved photoemission spectroscopy (ARPES) measurements on the magnetic semimetal EuAs, demonstrating a magnetism-induced topological transition from a topological nodal-line semimetal in the paramagnetic or the spin-polarized state to a topological massive Dirac metal in the antiferromagnetic (AFM) ground state at low temperature, featuring a pair of massive Dirac points, inverted bands and topological surface states on the (010) surface. Shubnikov-de Haas (SdH) oscillations in the AFM state identify nonzero Berry phase and a negative longitudinal magnetoresistance (-LMR) induced by the chiral anomaly, confirming the topological…
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