Suppressing Fast Dipolar Noise in Solid-State Spin Qubits

Fuente: arXiv
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Autores principales: Oliván, Jaime García, Biteri-Uribarren, Ainitze, Whaites, Oliver T., Casanova, Jorge
Formato: Preprint
Publicado: 2025
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author Oliván, Jaime García
Biteri-Uribarren, Ainitze
Whaites, Oliver T.
Casanova, Jorge
author_facet Oliván, Jaime García
Biteri-Uribarren, Ainitze
Whaites, Oliver T.
Casanova, Jorge
contents Spin qubit coherence is a fundamental resource for the realization of quantum technologies. For solid-state platforms, spin decoherence is dominated by the magneto-active environment in the lattice, limiting their applicability. While standard dynamical decoupling techniques, such as the Hahn echo, extend central spin coherence, they fail to suppress the fast noise arising from strong dipolar interactions within the bath. Here, we present a decoupling mechanism, Hybrid-LG, that suppresses intra-bath dipolar interactions -- thus, fast noise acting on spin qubits- and demonstrate its effectiveness in extending spin coherence through efficient in-house CCE simulations. Specifically, we investigate one of the most widely exploited solid-state quantum platforms: an ensemble of nitrogen-vacancy (NV) centers in diamond coupled to a large and dense bath of substitutional nitrogen paramagnetic impurities (P1 centers). Our results reveal at least a twofold enhancement in NV coherence time relative to standard techniques including P1 center driving, without requiring additional control power.
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id arxiv_https___arxiv_org_abs_2512_06948
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Suppressing Fast Dipolar Noise in Solid-State Spin Qubits
Oliván, Jaime García
Biteri-Uribarren, Ainitze
Whaites, Oliver T.
Casanova, Jorge
Quantum Physics
Spin qubit coherence is a fundamental resource for the realization of quantum technologies. For solid-state platforms, spin decoherence is dominated by the magneto-active environment in the lattice, limiting their applicability. While standard dynamical decoupling techniques, such as the Hahn echo, extend central spin coherence, they fail to suppress the fast noise arising from strong dipolar interactions within the bath. Here, we present a decoupling mechanism, Hybrid-LG, that suppresses intra-bath dipolar interactions -- thus, fast noise acting on spin qubits- and demonstrate its effectiveness in extending spin coherence through efficient in-house CCE simulations. Specifically, we investigate one of the most widely exploited solid-state quantum platforms: an ensemble of nitrogen-vacancy (NV) centers in diamond coupled to a large and dense bath of substitutional nitrogen paramagnetic impurities (P1 centers). Our results reveal at least a twofold enhancement in NV coherence time relative to standard techniques including P1 center driving, without requiring additional control power.
title Suppressing Fast Dipolar Noise in Solid-State Spin Qubits
topic Quantum Physics
url https://arxiv.org/abs/2512.06948