Steady-state entanglement of spin qubits mediated by non-reciprocal and chiral magnons

Fuente: arXiv
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Main Authors: Dols, Martijn, Cherkasskii, Mikhail, Bittencourt, Victor A. S. V., Gonzalez-Ballestero, Carlos, Dasari, Durga B. R., Kusminskiy, Silvia Viola
Format: Preprint
Published: 2025
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author Dols, Martijn
Cherkasskii, Mikhail
Bittencourt, Victor A. S. V.
Gonzalez-Ballestero, Carlos
Dasari, Durga B. R.
Kusminskiy, Silvia Viola
author_facet Dols, Martijn
Cherkasskii, Mikhail
Bittencourt, Victor A. S. V.
Gonzalez-Ballestero, Carlos
Dasari, Durga B. R.
Kusminskiy, Silvia Viola
contents We propose a hybrid quantum system in which a magnet supporting non-reciprocal magnons, chiral magnons, or both mediates the dissipative and unidirectional coupling of spin qubits. By driving the qubits, the steady state of this qubit-qubit coupling scheme becomes the maximally entangled Bell state. We devise a protocol where the system converges to this entangled state and benchmark it including qubit decay and dephasing. The protocol is numerically tested on a hybrid system consisting of nitrogen-vacancy (NV) centers coupled to magnon surface modes of an yttrium iron garnet (YIG) film. We show that the dephasing time of the NV centers forms the bottleneck for achieving the entanglement of NV centers separated by a distance within the magnon coherence length. Our findings identify the key technological requirements and demonstrate a viable route toward steady-state entanglement of solid-state spins over distances of several microns using magnonic quantum networks, expanding the toolbox of magnonics for quantum information purposes.
format Preprint
id arxiv_https___arxiv_org_abs_2509_13094
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Steady-state entanglement of spin qubits mediated by non-reciprocal and chiral magnons
Dols, Martijn
Cherkasskii, Mikhail
Bittencourt, Victor A. S. V.
Gonzalez-Ballestero, Carlos
Dasari, Durga B. R.
Kusminskiy, Silvia Viola
Quantum Physics
We propose a hybrid quantum system in which a magnet supporting non-reciprocal magnons, chiral magnons, or both mediates the dissipative and unidirectional coupling of spin qubits. By driving the qubits, the steady state of this qubit-qubit coupling scheme becomes the maximally entangled Bell state. We devise a protocol where the system converges to this entangled state and benchmark it including qubit decay and dephasing. The protocol is numerically tested on a hybrid system consisting of nitrogen-vacancy (NV) centers coupled to magnon surface modes of an yttrium iron garnet (YIG) film. We show that the dephasing time of the NV centers forms the bottleneck for achieving the entanglement of NV centers separated by a distance within the magnon coherence length. Our findings identify the key technological requirements and demonstrate a viable route toward steady-state entanglement of solid-state spins over distances of several microns using magnonic quantum networks, expanding the toolbox of magnonics for quantum information purposes.
title Steady-state entanglement of spin qubits mediated by non-reciprocal and chiral magnons
topic Quantum Physics
url https://arxiv.org/abs/2509.13094