Fast and high-fidelity transfer of edge states via dynamical control of topological phases and effects of dissipation

Fuente: arXiv
Gespeichert in:
Bibliographische Detailangaben
Hauptverfasser: Kanda, Yuuki, Fujisawa, Yusuke, Yakubo, Kousuke, Kawakami, Norio, Obuse, Hideaki
Format: Preprint
Veröffentlicht: 2025
Schlagworte:
Online-Zugang:
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
_version_ 1866918030422835200
author Kanda, Yuuki
Fujisawa, Yusuke
Yakubo, Kousuke
Kawakami, Norio
Obuse, Hideaki
author_facet Kanda, Yuuki
Fujisawa, Yusuke
Yakubo, Kousuke
Kawakami, Norio
Obuse, Hideaki
contents Topological edge states are robust against symmetry-preserving perturbations and noise, making them promising for quantum information and computation, particularly in topological quantum computation through braiding operations of Majorana quasiparticles. Realizing these applications requires fast and high-fidelity dynamic control of edge states. In this work, we theoretically propose a high-fidelity method for transferring one-dimensional topological edge states by dynamically moving a domain wall between regions of different topological numbers. This method fundamentally relies on Lorentz invariance and relativistic effects, as moving the domain wall at a constant speed results in the problem into the uniform linear motion of a particle obeying a Dirac equation. We demonstrate effectiveness of our method in transferring edge states with high fidelity using a one-dimensional quantum walk with two internal states, which is feasible with current experimental technology. We also investigate how bit and phase-flip dissipation from environment affects transfer efficiency. Remarkably, these dissipation have minimal effects on efficiency at slow and fast transfer limits, respectively, which can be explained by relativistic effects to the edge states.
format Preprint
id arxiv_https___arxiv_org_abs_2505_16606
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Fast and high-fidelity transfer of edge states via dynamical control of topological phases and effects of dissipation
Kanda, Yuuki
Fujisawa, Yusuke
Yakubo, Kousuke
Kawakami, Norio
Obuse, Hideaki
Mesoscale and Nanoscale Physics
Statistical Mechanics
Quantum Physics
Topological edge states are robust against symmetry-preserving perturbations and noise, making them promising for quantum information and computation, particularly in topological quantum computation through braiding operations of Majorana quasiparticles. Realizing these applications requires fast and high-fidelity dynamic control of edge states. In this work, we theoretically propose a high-fidelity method for transferring one-dimensional topological edge states by dynamically moving a domain wall between regions of different topological numbers. This method fundamentally relies on Lorentz invariance and relativistic effects, as moving the domain wall at a constant speed results in the problem into the uniform linear motion of a particle obeying a Dirac equation. We demonstrate effectiveness of our method in transferring edge states with high fidelity using a one-dimensional quantum walk with two internal states, which is feasible with current experimental technology. We also investigate how bit and phase-flip dissipation from environment affects transfer efficiency. Remarkably, these dissipation have minimal effects on efficiency at slow and fast transfer limits, respectively, which can be explained by relativistic effects to the edge states.
title Fast and high-fidelity transfer of edge states via dynamical control of topological phases and effects of dissipation
topic Mesoscale and Nanoscale Physics
Statistical Mechanics
Quantum Physics
url https://arxiv.org/abs/2505.16606