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A light-induced phononic symmetry switch and giant dissipationless topological photocurrent in ZrTe5

  • Liang Luo
  • , Di Cheng
  • , Boqun Song
  • , Lin Lin Wang
  • , Chirag Vaswani
  • , P. M. Lozano
  • , G. Gu
  • , Chuankun Huang
  • , Richard H.J. Kim
  • , Zhaoyu Liu
  • , Joong Mok Park
  • , Yongxin Yao
  • , Kaiming Ho
  • , Ilias E. Perakis
  • , Qiang Li
  • , Jigang Wang
  • Iowa State University
  • Brookhaven National Laboratory Condensed Matter Physics and Materials Science Department
  • Stony Brook University
  • University of Alabama at Birmingham

Research output: Contribution to journalArticlepeer-review

127 Scopus citations

Abstract

Dissipationless currents from topologically protected states are promising for disorder-tolerant electronics and quantum computation. Here, we photogenerate giant anisotropic terahertz nonlinear currents with vanishing scattering, driven by laser-induced coherent phonons of broken inversion symmetry in a centrosymmetric Dirac material ZrTe5. Our work suggests that this phononic terahertz symmetry switching leads to formation of Weyl points, whose chirality manifests in a transverse, helicity-dependent current, orthogonal to the dynamical inversion symmetry breaking axis, via circular photogalvanic effect. The temperature-dependent topological photocurrent exhibits several distinct features: Berry curvature dominance, particle–hole reversal near conical points and chirality protection that is responsible for an exceptional ballistic transport length of ~10 μm. These results, together with first-principles modelling, indicate two pairs of Weyl points dynamically created by B1u phonons of broken inversion symmetry. Such phononic terahertz control breaks ground for coherent manipulation of Weyl nodes and robust quantum transport without application of static electric or magnetic fields.

Original languageEnglish
Pages (from-to)329-334
Number of pages6
JournalNature materials
Volume20
Issue number3
DOIs
StatePublished - Mar 2021

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