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Topological Phase Transition and Phonon-Space Dirac Topology Surfaces in ZrTe5

2020/04/28 by Niraj Aryal, Xilian Jin, Qiang Li +4
Materials Science · Physics and Astronomy · #2D Materials and Applications #Computer science #Condensed matter physics #Dirac (video compression format) #Graphene research and applications #Mirror symmetry #Phase transition #Phonon #Physics #Quantum mechanics #Space (punctuation) #Topological Materials and Phenomena #Topological insulator #Topology (electrical circuits) #cond-mat.mes-hall #cond-mat.mtrl-sci #van der Waals force

paper · pdf · doi:10.1103/physrevlett.126.016401

published as Phys. Rev. Lett. 126, 016401 (2021) · 5 pages, 4 figures

arxiv created 2020/04/28 · openalex publication_date 2021/01/05 · arxiv updated 2021/01/08 · openalex created_date 2021/01/18 · openalex updated_date 2026/08/05

Abstract

We use first-principles methods to demonstrate that, in ZrTe5, a layered van der Waals material like graphite, atomic displacements corresponding to five of the six zone-center Ag (symmetry-preserving) phonon modes can drive a topological transition from a strong to a weak topological insulator with a Dirac semimetal state emerging at the transition, giving rise to a Dirac topology surface in the multidimensional space formed by the Ag phonon modes. This implies that the topological transition in ZrTe5 can be realized with many different settings of external stimuli capable of penetrating through the phonon-space Dirac surface without breaking the crystallographic symmetry. Furthermore, we predict that domains with effective mass of opposite signs can be created by laser pumping and will host Weyl modes of opposite chirality propagating along the domain boundaries. Studying phonon-space topology surfaces provides a new route to understanding and utilizing the exotic physical properties of ZrTe5 and related quantum materials.

Citations