Suppressing Fast Dipolar Noise in Solid-State Spin Qubits
- URL: http://arxiv.org/abs/2512.06948v1
- Date: Sun, 07 Dec 2025 18:00:51 GMT
- Title: Suppressing Fast Dipolar Noise in Solid-State Spin Qubits
- Authors: Jaime García Oliván, Ainitze Biteri-Uribarren, Oliver T. Whaites, Jorge Casanova,
- Abstract summary: Hybrid-LG suppresses intra-bath dipolar interactions -- thus, fast noise acting on spin qubits.<n>We investigate one of the most widely exploited solid-state quantum platforms.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: 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.
Related papers
- Electrical Readout of Spin Environments in Diamond for Quantum Sensing [0.016324901313561745]
Nitrogen-vacancy centres in diamond are a key platform for quantum sensing and quantum information.<n>Here we demonstrate an all-electrical approach, photocurrent double electron-electron resonance (PC-DEER)<n>We resolve the signatures of substitutional nitrogen (P1) and NVH centers with reproducible contrast by using electrical signals.
arXiv Detail & Related papers (2025-09-30T17:33:03Z) - Spin squeezing in an ensemble of nitrogen-vacancy centers in diamond [6.338826024477338]
We present the first experimental demonstration of spin squeezing in a solid-state spin system.<n>Our results open the door to entanglement-enhanced metrology using macroscopic ensembles of optically active spins in solids.
arXiv Detail & Related papers (2025-03-18T18:00:01Z) - A coherence sweet spot with enhanced dipolar coupling [0.0]
We demonstrate a compromise-free singlet-triplet (ST) qubit, where the qubit couples maximally to the driving field.
We demonstrate a spin qubit sweet spot maximizing the dipolar coupling and simultaneously minimizing the decoherence.
These findings pave the way for enhanced engineering of these nanomaterials for next-generation qubit technologies.
arXiv Detail & Related papers (2024-05-17T14:06:48Z) - Magnon-mediated qubit coupling determined via dissipation measurements [0.0]
Hybrid quantum systems (HQSs) of localized nitrogen-vacancy (NV) centers in diamond and delocalized magnon modes have attracted significant attention.
Here, we experimentally determine the magnon-mediated NV-NV coupling from the magnon-induced self-energy of NV centers.
Our results are quantitatively consistent with a model in which the NV center is coupled to magnons by dipolar interactions.
arXiv Detail & Related papers (2023-08-22T18:00:13Z) - Control of an environmental spin defect beyond the coherence limit of a central spin [79.16635054977068]
We present a scalable approach to increase the size of electronic-spin registers.
We experimentally realize this approach to demonstrate the detection and coherent control of an unknown electronic spin outside the coherence limit of a central NV.
Our work paves the way for engineering larger quantum spin registers with the potential to advance nanoscale sensing, enable correlated noise spectroscopy for error correction, and facilitate the realization of spin-chain quantum wires for quantum communication.
arXiv Detail & Related papers (2023-06-29T17:55:16Z) - Probing dynamics of a two-dimensional dipolar spin ensemble using single
qubit sensor [62.997667081978825]
We experimentally investigate individual spin dynamics in a two-dimensional ensemble of electron spins on the surface of a diamond crystal.
We show that this anomalously slow relaxation rate is due to the presence of strong dynamical disorder.
Our work paves the way towards microscopic study and control of quantum thermalization in strongly interacting disordered spin ensembles.
arXiv Detail & Related papers (2022-07-21T18:00:17Z) - Demonstration of electron-nuclear decoupling at a spin clock transition [54.088309058031705]
Clock transitions protect molecular spin qubits from magnetic noise.
linear coupling to nuclear degrees of freedom causes a modulation and decay of electronic coherence.
An absence of quantum information leakage to the nuclear bath provides opportunities to characterize other decoherence sources.
arXiv Detail & Related papers (2021-06-09T16:23:47Z) - Anisotropic electron-nuclear interactions in a rotating quantum spin
bath [55.41644538483948]
Spin-bath interactions are strongly anisotropic, and rapid physical rotation has long been used in solid-state nuclear magnetic resonance.
We show that the interaction between electron spins of nitrogen-vacancy centers and a bath of $13$C nuclear spins introduces decoherence into the system.
Our findings offer new insights into the use of physical rotation for quantum control with implications for quantum systems having motional and rotational degrees of freedom that are not fixed.
arXiv Detail & Related papers (2021-05-16T06:15:00Z) - Fast high-fidelity single-qubit gates for flip-flop qubits in silicon [68.8204255655161]
flip-flop qubit is encoded in the states with antiparallel donor-bound electron and donor nuclear spins in silicon.
We study the multilevel system that is formed by the interacting electron and nuclear spins.
We propose an optimal control scheme that produces fast and robust single-qubit gates in the presence of low-frequency noise.
arXiv Detail & Related papers (2021-01-27T18:37:30Z) - Probing the coherence of solid-state qubits at avoided crossings [51.805457601192614]
We study the quantum dynamics of paramagnetic defects interacting with a nuclear spin bath at avoided crossings.
The proposed theoretical approach paves the way to designing the coherence properties of spin qubits from first principles.
arXiv Detail & Related papers (2020-10-21T15:37:59Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.