Locating topological phase transitions using nonequilibrium signatures in local bulk observables
arXiv:1606.06673 · doi:10.1103/PhysRevB.95.041105
Abstract
Topological quantum phases cannot be characterized by local order parameters in the bulk. In this work however, we show that signatures of a topological quantum critical point do remain in local observables in the bulk, and manifest themselves as non-analyticities in their expectation values taken over a family of non-equilibrium states generated using a quantum quench protocol. The signature can be used for precisely locating the critical points in parameter space. A large class of initial states can be chosen for the quench (including finite temperature states), the sufficient condition being existence of a finite occupation-gradient with respect to energy for the single-particle critical mode. We demonstrate these results in tractable models of non-interacting fermions exhibiting topological phase transitions in one and two spatial dimensions. We also show that the non-analyticities can be absent if the gap-closing is non-topological, i.e., when it corresponds to no phase transition.
4.5 pages, 5 figures + supplementary material, version published in Phys. Rev. B as a Rapid Communication
References in corpus (5)
- Thermalization and its mechanism for generic isolated quantum systems
- Excited state quantum phase transitions in many-body systems
- Topological classification of dynamical phase transitions
- Dynamical quantum phase transitions: Role of topological nodes in wavefunction overlaps
- Excited-state quantum phase transitions in many-body systems with infinite-range interaction: Localization, dynamics, and bifurcation
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