An experimental scheme for determining the Berry phase in two-dimensional quantum materials with a flat band

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Hauptverfasser: Ye, Li-Li, Wang, Cheng-Zhen, Lai, Ying-Cheng
Format: Preprint
Veröffentlicht: 2024
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author Ye, Li-Li
Wang, Cheng-Zhen
Lai, Ying-Cheng
author_facet Ye, Li-Li
Wang, Cheng-Zhen
Lai, Ying-Cheng
contents Experimentally feasible methods to determine the Berry phase, a fundamental quantity characterizing a quantum material, are often needed in applications. We develop an approach to detecting the Berry phase by using a class of two-dimensional (2D) Dirac materials with a flat band, the $α$-$\mathcal{T}_3$ lattices. The properties of this class of quantum materials are controlled by a single parameter $0 \le α\le 1$, where the left and right endpoints correspond to graphene with pseudospin-1/2 and the dice lattice with pseudospin-1 Dirac-Weyl quasiparticles, respectively, and each specific value of $α$ represents a material with a unique Berry phase. Applying a constant electric field to the $α$-$\mathcal{T}_3$ lattice, we calculate the resulting electric current and find a one-to-one correspondence between the current and the Berry phase in both the linear and nonlinear response regimes. In the linear (Kubo) regime, the main physics is the Zitterbewegung effect. In the nonlinear regime, the Schwinger mechanism dominates. Beyond the nonlinear regime, Bloch-Zener oscillations can arise. Measuring the current thus provides an effective and experimentally feasible way to determine the Berry phase for this spectrum of 2D quantum materials.
format Preprint
id arxiv_https___arxiv_org_abs_2402_15596
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle An experimental scheme for determining the Berry phase in two-dimensional quantum materials with a flat band
Ye, Li-Li
Wang, Cheng-Zhen
Lai, Ying-Cheng
Mesoscale and Nanoscale Physics
Materials Science
Experimentally feasible methods to determine the Berry phase, a fundamental quantity characterizing a quantum material, are often needed in applications. We develop an approach to detecting the Berry phase by using a class of two-dimensional (2D) Dirac materials with a flat band, the $α$-$\mathcal{T}_3$ lattices. The properties of this class of quantum materials are controlled by a single parameter $0 \le α\le 1$, where the left and right endpoints correspond to graphene with pseudospin-1/2 and the dice lattice with pseudospin-1 Dirac-Weyl quasiparticles, respectively, and each specific value of $α$ represents a material with a unique Berry phase. Applying a constant electric field to the $α$-$\mathcal{T}_3$ lattice, we calculate the resulting electric current and find a one-to-one correspondence between the current and the Berry phase in both the linear and nonlinear response regimes. In the linear (Kubo) regime, the main physics is the Zitterbewegung effect. In the nonlinear regime, the Schwinger mechanism dominates. Beyond the nonlinear regime, Bloch-Zener oscillations can arise. Measuring the current thus provides an effective and experimentally feasible way to determine the Berry phase for this spectrum of 2D quantum materials.
title An experimental scheme for determining the Berry phase in two-dimensional quantum materials with a flat band
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2402.15596