Mobility Crossover in Two-Dimensional Berry Crystals

Fuente: arXiv
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Main Authors: Chai, Zixuan, Chen, Si-Yuan, Yu, Chenzheng, Graf, Anton M., Keski-Rahkonen, Joonas, Heller, Eric J.
Format: Preprint
Published: 2024
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author Chai, Zixuan
Chen, Si-Yuan
Yu, Chenzheng
Graf, Anton M.
Keski-Rahkonen, Joonas
Heller, Eric J.
author_facet Chai, Zixuan
Chen, Si-Yuan
Yu, Chenzheng
Graf, Anton M.
Keski-Rahkonen, Joonas
Heller, Eric J.
contents A Berry crystal is a random superposition of N plane waves of equal amplitude and fixed wavevector magnitude, propagating in different directions. Using numerical simulations of wavepacket dynamics, spectral analysis based on autocorrelation functions, and scaling of Inverse Participation Ratio, the nature of eigenstates across the energy spectrum of a two-dimensional Berry crystal is characterized. It exhibits Anderson localization and critical (extended but non-ergodic) states, reminiscent of quasicrystals, which sit in the middle ground between periodic and disordered systems and can host critical states. However, in contrast to quasicrystals that display sharp mobility edges separating extended and localized phases, the Berry crystal exhibits an extended regimes of critical states. We name this a "mobility crossover". At weak potential strength, low-energy states are extended while higher-energy states near the backscattering momentum are critical. As the potential strength increases to become comparable with the recoil energy, these critical states evolve into localized states, yielding a transition from extended non-ergodic to localized behavior near the backscattering momentum. An estimate for the boundaries of ergodic extended regimes is given by the mapping onto an effective Anderson model on a Bethe Lattice. The results shed light on the relation between backscattering and Anderson localization in continuous two-dimensional aperiodic systems.
format Preprint
id arxiv_https___arxiv_org_abs_2412_07117
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Mobility Crossover in Two-Dimensional Berry Crystals
Chai, Zixuan
Chen, Si-Yuan
Yu, Chenzheng
Graf, Anton M.
Keski-Rahkonen, Joonas
Heller, Eric J.
Disordered Systems and Neural Networks
A Berry crystal is a random superposition of N plane waves of equal amplitude and fixed wavevector magnitude, propagating in different directions. Using numerical simulations of wavepacket dynamics, spectral analysis based on autocorrelation functions, and scaling of Inverse Participation Ratio, the nature of eigenstates across the energy spectrum of a two-dimensional Berry crystal is characterized. It exhibits Anderson localization and critical (extended but non-ergodic) states, reminiscent of quasicrystals, which sit in the middle ground between periodic and disordered systems and can host critical states. However, in contrast to quasicrystals that display sharp mobility edges separating extended and localized phases, the Berry crystal exhibits an extended regimes of critical states. We name this a "mobility crossover". At weak potential strength, low-energy states are extended while higher-energy states near the backscattering momentum are critical. As the potential strength increases to become comparable with the recoil energy, these critical states evolve into localized states, yielding a transition from extended non-ergodic to localized behavior near the backscattering momentum. An estimate for the boundaries of ergodic extended regimes is given by the mapping onto an effective Anderson model on a Bethe Lattice. The results shed light on the relation between backscattering and Anderson localization in continuous two-dimensional aperiodic systems.
title Mobility Crossover in Two-Dimensional Berry Crystals
topic Disordered Systems and Neural Networks
url https://arxiv.org/abs/2412.07117