arXiv · 2505.16606
Fast and high-fidelity transfer of edge states via dynamical control of topological phases and effects of dissipation
Abstract
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 the 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 protocol for transferring topological edge states by dynamically moving a domain wall between two regions with different topological numbers in one dimension. This protocol fundamentally relies on Lorentz invariance and relativistic effects, because moving the domain wall at a constant speed is described by a mass term with the uniform linear motion in the Dirac equation. We demonstrate the effectiveness of our protocol 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-flip and dephasing dissipation to the environment affect transfer efficiency. Remarkably, bit (dephasing) dissipation does not affect the fidelity at the slow (fast) transfer limit, which can be explained by the relativistic effects on the edge states.
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Yuuki Kanda, Yusuke Fujisawa, Kousuke Yakubo, Norio Kawakami, Hideaki Obuse. 2025-05-22. Fast and high-fidelity transfer of edge states via dynamical control of topological phases and effects of dissipation. https://arxiv.org/abs/2505.16606
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