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A generic approach to extract geometry from non-adiabatic (gap-closing) processes and its consequences: geometric pumping and dephasing at topological phase transitions in topological insulators or semi-metals.

ORAL

Abstract

Geometry in physics arises from adiabaticity via an analog to “parallel transport”. Locally, geometry is reflected by Berry curvatures, from which one can deduce various observables (e.g., adiabatic pump, electric polarization). 

Our first result (Song 2021) is to show Berry’s framework (and its development) is not the unique one to incorporate geometry. In fact, parallel transport or local curvatures are dispensable. Our scheme relies on making quantum evolution mimic classical trajectories via a measure-preserving formalism (MPF). Measure preservation means a conservative system’s volume in phase space {p,q} is constant during evolution, known as the Liouville theorem. However, its quantum counterpart, Wigner flow, is compressible, which depreciates usage and poses a long-pending question: if MPF can be rigorously constructed and significantly used in quantum scenarios.

The second result is about an observable, inter-band pumping, namely geometric pumping. Its rate purely depends on an angle parameter, which, in certain in- stances, is linked to Z2. Since the pumping is for bulk, it challenges the wisdom that Z2 only implies sur- face/interface, known as bulk-edge correspondence. It relies on the flipping of Z2 (not which state of Z2) thus is a genuine consequence of topological phase transitions (TPT). We set out from a spin model to introduce a generic MPF, with which pumping rates and conditions are proved. Meanwhile, rational/irrational numbers are giving subtle influence. This work helps account for recent experiments on TPT in ZrTe5 (Luo 2021, Vaswani 2020).

Publication: B. Q. Song, J. D. H. Smith, L. Luo, J. Wang, Geometric pumping and dephasing at topological phase transition, arXiv preprint arXiv:2107.05560 (2021)<br>L. Luo, et. al, A light-induced phononic symmetry switch and giant dissipationless topological photocurrent in ZrTe5, Nature Materials, 20 (3), 329-334 (2021)<br>C Vaswani, et. al, Light-driven Raman coherence as a nonthermal route to ultrafast topology switching in a Dirac semimetal, Phys. Rev. X, 10 (2), 021013 (2020)

Presenters

  • Boqun Song

    Iowa State University

Authors

  • Boqun Song

    Iowa State University

  • Jonathan Smith

    Iowa State University

  • Liang Luo

    Iowa State University, Ames Laboratory

  • JIGANG Wang

    Iowa State University