Weyl, Dirac and high-fold chiral fermions in topological quantum materials
M. Zahid Hasan, Guoqing Chang, Ilya Belopolski, Guang Bian, Su-Yang, Xu, Jia-Xin Yin

TL;DR
This review discusses the discovery, properties, and recent advances in Weyl, Dirac, and high-fold chiral fermions in topological quantum materials, highlighting their exotic phenomena and potential applications.
Contribution
It provides a comprehensive overview of Weyl and high-fold chiral fermions in materials, including experimental observations and theoretical developments, serving as a guide for future research.
Findings
Observation of Weyl fermions in TaAs via photoemission spectroscopy
Identification of high-fold chiral fermion phases in RhSi crystals
Discussion of Weyl-line phases in magnetic topological materials
Abstract
Quantum materials hosting Weyl fermions have opened a new era of research in condensed matter physics. First proposed in 1929 in particle physics, Weyl fermions have yet to be observed as elementary particles. In 2015, Weyl fermions were detected as collective electronic excitations in the strong spin-orbit coupled material tantalum arsenide, TaAs. This discovery was followed by a flurry of experimental and theoretical explorations of Weyl phenomena in materials. Weyl materials naturally lend themselves to the exploration of the topological index associated with Weyl fermions and their divergent Berry curvature field, as well as the topological bulk-boundary correspondence giving rise to protected conducting surface states. Here, we review the broader class of Weyl topological phenomena in materials, starting with the observation of emergent Weyl fermions in the bulk and of Fermi arc…
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