Suppression of coherent errors during entangling operations in NV centers in diamond
- URL: http://arxiv.org/abs/2503.17147v1
- Date: Fri, 21 Mar 2025 13:50:57 GMT
- Title: Suppression of coherent errors during entangling operations in NV centers in diamond
- Authors: Regina Finsterhoelzl, Guido Burkard,
- Abstract summary: We consider entangling operations in a single nitrogen-vacancy (NV) center in diamond.<n>We present protocols based on synchronization effects that allow for a complete suppression of both error sources in state-of-the-art CNOT gate schemes.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We consider entangling operations in a single nitrogen-vacancy (NV) center in diamond where the hyperfine-coupled nuclear spin qubits are addressed with radio-frequency (rf) pulses conditioned on the state of the central electron spin. Limiting factors for the gate fidelity are coherent errors due to off-resonant driving of neighboring transitions in the dense, hyperfine-split energy spectrum of the defect and non-negligible perpendicular hyperfine tensor components that narrow the choice of $^{13}\rm C$ nuclear spin qubits. We address these issues by presenting protocols based on synchronization effects that allow for a complete suppression of both error sources in state-of-the-art CNOT gate schemes. This is possible by a suitable choice of parameter sets that incorporate the error into the scheme instead of avoiding it. These results contribute to the recent progress toward scalable quantum computation with defects in solids.
Related papers
- Synchronous manipulation of nuclear spins via boron vacancy centers in hexagonal boron nitride [0.0]
We develop a method for entangling operations on nuclear spins surrounding a negatively charged boron vacancy point defect in hexagonal boron nitride (hBN)
We show that in the presence of a background magnetic field, one can collectively manipulate the state of the nuclei with $hatU_z$ and $hatU_x$ rotations.
Our work can serve as the foundation for exploiting the nuclear spins in hBN in future quantum technological applications.
arXiv Detail & Related papers (2024-11-05T06:00:20Z) - High-Fidelity Entangling Gates for Electron and Nuclear Spin Qubits in Diamond [0.0]
We propose schemes for fast and high-fidelity entangling gates on a nitrogen-vacancy center in diamond.
We predict a complete suppression of off-resonant driving errors for two-qubit gates when addressing the NV electron spin conditioned on states of nuclear spins of the nitrogen atom of the defect.
arXiv Detail & Related papers (2024-03-18T08:07:55Z) - Accurate Hyperfine Tensors for Solid State Quantum Applications: Case of the NV Center in Diamond [0.0]
We show that the absolute relative error of the computed hyperfine parameters can exceed 100% in VASP for weakly coupled nuclear spins.
The provided accurate hyperfine data for the NV center enables high-precision simulation of NV quantum nodes.
arXiv Detail & Related papers (2023-09-07T19:33:06Z) - 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) - Generation of genuine all-way entanglement in defect-nuclear spin systems through dynamical decoupling sequences [0.0]
Multipartite entangled states are an essential resource for sensing, quantum error correction, and cryptography.
Here we show how to prepare high-quality GHZ$_M$-like states with minimal cross-talk.
arXiv Detail & Related papers (2023-02-11T02:50:26Z) - 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) - Chemical tuning of spin clock transitions in molecular monomers based on
nuclear spin-free Ni(II) [52.259804540075514]
We report the existence of a sizeable quantum tunnelling splitting between the two lowest electronic spin levels of mononuclear Ni complexes.
The level anti-crossing, or magnetic clock transition, associated with this gap has been directly monitored by heat capacity experiments.
The comparison of these results with those obtained for a Co derivative, for which tunnelling is forbidden by symmetry, shows that the clock transition leads to an effective suppression of intermolecular spin-spin interactions.
arXiv Detail & Related papers (2021-03-04T13:31:40Z) - Crosstalk Suppression for Fault-tolerant Quantum Error Correction with
Trapped Ions [62.997667081978825]
We present a study of crosstalk errors in a quantum-computing architecture based on a single string of ions confined by a radio-frequency trap, and manipulated by individually-addressed laser beams.
This type of errors affects spectator qubits that, ideally, should remain unaltered during the application of single- and two-qubit quantum gates addressed at a different set of active qubits.
We microscopically model crosstalk errors from first principles and present a detailed study showing the importance of using a coherent vs incoherent error modelling and, moreover, discuss strategies to actively suppress this crosstalk at the gate level.
arXiv Detail & Related papers (2020-12-21T14:20:40Z) - 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) - A multiconfigurational study of the negatively charged nitrogen-vacancy
center in diamond [55.58269472099399]
Deep defects in wide band gap semiconductors have emerged as leading qubit candidates for realizing quantum sensing and information applications.
Here we show that unlike single-particle treatments, the multiconfigurational quantum chemistry methods, traditionally reserved for atoms/molecules, accurately describe the many-body characteristics of the electronic states of these defect centers.
arXiv Detail & Related papers (2020-08-24T01:49:54Z)
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.