Quantum state transfer and maximal entanglement between distant qubits using a minimal quasicrystal pump

Fuente: arXiv
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Main Authors: Ghosh, Arnob Kumar, Souto, Rubén Seoane, Azimi-Mousolou, Vahid, Black-Schaffer, Annica M., Holmvall, Patric
Format: Preprint
Published: 2025
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author Ghosh, Arnob Kumar
Souto, Rubén Seoane
Azimi-Mousolou, Vahid
Black-Schaffer, Annica M.
Holmvall, Patric
author_facet Ghosh, Arnob Kumar
Souto, Rubén Seoane
Azimi-Mousolou, Vahid
Black-Schaffer, Annica M.
Holmvall, Patric
contents Coherent quantum state transfer over macroscopic distances between non-neighboring elements in quantum circuits is a crucial component to increase connectivity and simplify quantum information processing. To facilitate such transfers, an efficient and easily controllable quantum pump would be highly beneficial. In this work, we demonstrate such a quantum pump based on a one-dimensional quasicrystal Fibonacci chain~(FC). In particular, we utilize the unique properties of quasicrystals to pump the edge-localized winding states between the two distant ends of the chain by only minimal manipulation of the FC at its end points. We establish the necessary conditions for successful state transfer within a fully time-dependent picture and also demonstrate robustness of the transfer protocol against disorder. We then couple external qubits to each end of the FC and establish highly adaptable functionality as a quantum bus with both on-demand switching of the qubit states and generation of maximally entangled Bell states between the qubits. Thanks to the minimal control parameters, the setup is well-suited for implementation across diverse experimental platforms, thus establishing quasicrystals as an efficient platform for versatile quantum information processing.
format Preprint
id arxiv_https___arxiv_org_abs_2507_00854
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum state transfer and maximal entanglement between distant qubits using a minimal quasicrystal pump
Ghosh, Arnob Kumar
Souto, Rubén Seoane
Azimi-Mousolou, Vahid
Black-Schaffer, Annica M.
Holmvall, Patric
Mesoscale and Nanoscale Physics
Quantum Physics
Coherent quantum state transfer over macroscopic distances between non-neighboring elements in quantum circuits is a crucial component to increase connectivity and simplify quantum information processing. To facilitate such transfers, an efficient and easily controllable quantum pump would be highly beneficial. In this work, we demonstrate such a quantum pump based on a one-dimensional quasicrystal Fibonacci chain~(FC). In particular, we utilize the unique properties of quasicrystals to pump the edge-localized winding states between the two distant ends of the chain by only minimal manipulation of the FC at its end points. We establish the necessary conditions for successful state transfer within a fully time-dependent picture and also demonstrate robustness of the transfer protocol against disorder. We then couple external qubits to each end of the FC and establish highly adaptable functionality as a quantum bus with both on-demand switching of the qubit states and generation of maximally entangled Bell states between the qubits. Thanks to the minimal control parameters, the setup is well-suited for implementation across diverse experimental platforms, thus establishing quasicrystals as an efficient platform for versatile quantum information processing.
title Quantum state transfer and maximal entanglement between distant qubits using a minimal quasicrystal pump
topic Mesoscale and Nanoscale Physics
Quantum Physics
url https://arxiv.org/abs/2507.00854