Limits to Quantum Gate Fidelity from Near-Field Thermal and Vacuum
Fluctuations
- URL: http://arxiv.org/abs/2207.09441v3
- Date: Thu, 8 Jun 2023 17:44:46 GMT
- Title: Limits to Quantum Gate Fidelity from Near-Field Thermal and Vacuum
Fluctuations
- Authors: Wenbo Sun, Sathwik Bharadwaj, Li-Ping Yang, Yu-Ling Hsueh, Yifan Wang,
Dan Jiao, Rajib Rahman, and Zubin Jacob
- Abstract summary: evanescent wave Johnson noise (EWJN) caused by thermal and vacuum fluctuations is an important unmitigated noise.
EWJN induces the decay of spin qubits and limits the quantum gate operation fidelity.
We study the limits to two spin-qubit gate fidelity from EWJN-induced relaxation processes in two experimentally relevant quantum computing platforms.
- Score: 11.344927971260676
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: High-fidelity quantum gate operations are essential for achieving scalable
quantum circuits. In spin qubit quantum computing systems, metallic gates and
antennas which are necessary for qubit operation, initialization, and readout,
also cause detriments by enhancing fluctuations of electromagnetic fields.
Therefore evanescent wave Johnson noise (EWJN) caused by thermal and vacuum
fluctuations becomes an important unmitigated noise, which induces the decay of
spin qubits and limits the quantum gate operation fidelity. Here, we first
develop a quantum electrodynamics theory of EWJN. Then we propose a numerical
technique based on volume integral equations to quantify EWJN strength in the
vicinity of nanofabricated metallic gates with arbitrary geometry. We study the
limits to two spin-qubit gate fidelity from EWJN-induced relaxation processes
in two experimentally relevant quantum computing platforms: (a) silicon quantum
dot system and (b) NV centers in diamond. Finally, we introduce the Lindbladian
engineering method to optimize the control pulse sequence design and show its
enhanced performance over Hamiltonian engineering in mitigating the influence
of thermal and vacuum fluctuations. Our work leverages advances in
computational electromagnetics, fluctuational electrodynamics and open quantum
systems to suppress the effects of thermal and vacuum fluctuations and reach
the limits of two-spin-qubit gate fidelity.
Related papers
- Dynamic sweet spot of driven flopping-mode spin qubits in planar quantum dots [0.0]
We study the impact of electric noise on a planar double quantum dot (DQD) spin qubit under the influence of AC gates applied to the dot levels.
We find that driving the qubit off-resonantly effectively mitigates the influence of charge noise, leading to a manifestation of a dynamic sweet spot.
arXiv Detail & Related papers (2024-08-07T12:36:48Z) - Mitigating Errors on Superconducting Quantum Processors through Fuzzy
Clustering [38.02852247910155]
A new Quantum Error Mitigation (QEM) technique uses Fuzzy C-Means clustering to specifically identify measurement error patterns.
We report a proof-of-principle validation of the technique on a 2-qubit register, obtained as a subset of a real NISQ 5-qubit superconducting quantum processor.
We demonstrate that the FCM-based QEM technique allows for reasonable improvement of the expectation values of single- and two-qubit gates based quantum circuits.
arXiv Detail & Related papers (2024-02-02T14:02:45Z) - Quantum error mitigation for Fourier moment computation [49.1574468325115]
This paper focuses on the computation of Fourier moments within the context of a nuclear effective field theory on superconducting quantum hardware.
The study integrates echo verification and noise renormalization into Hadamard tests using control reversal gates.
The analysis, conducted using noise models, reveals a significant reduction in noise strength by two orders of magnitude.
arXiv Detail & Related papers (2024-01-23T19:10:24Z) - QuantumSEA: In-Time Sparse Exploration for Noise Adaptive Quantum
Circuits [82.50620782471485]
QuantumSEA is an in-time sparse exploration for noise-adaptive quantum circuits.
It aims to achieve two key objectives: (1) implicit circuits capacity during training and (2) noise robustness.
Our method establishes state-of-the-art results with only half the number of quantum gates and 2x time saving of circuit executions.
arXiv Detail & Related papers (2024-01-10T22:33:00Z) - Extending the coherence time of spin defects in hBN enables advanced
qubit control and quantum sensing [0.0]
This work lays the foundation for nanoscale sensing using spin defects in an exfoliable material.
It opens a promising path to quantum sensors and quantum networks integrated into ultra-thin structures.
arXiv Detail & Related papers (2022-12-24T23:00:12Z) - Modelling semiconductor spin qubits and their charge noise environment
for quantum gate fidelity estimation [0.9406493726662083]
The spin of an electron confined in semiconductor quantum dots is a promising candidate for quantum bit (qubit) implementations.
We present here a co-modelling framework for double quantum dot (DQD) devices and their charge noise environment.
We find an inverse correlation between quantum gate errors and quantum dot confinement.
arXiv Detail & Related papers (2022-10-10T10:12:54Z) - Simulating the electronic structure of spin defects on quantum computers [0.0]
We present calculations of the ground and excited state energies of spin defects in solids carried out on a quantum computer.
We focus on the negatively charged nitrogen vacancy center in diamond and on the double vacancy in 4H-SiC.
arXiv Detail & Related papers (2021-12-08T17:55:23Z) - Robust Nonadiabatic Holonomic Quantum Gates on Decoherence-Protected
Qubits [4.18804572788063]
We propose a scheme for quantum manipulation by combining the geometric phase approach with the dynamical correction technique.
Our scheme is implemented on the superconducting circuits, which also simplifies previous implementations.
arXiv Detail & Related papers (2021-10-06T14:39:52Z) - Experimental Realization of Nonadiabatic Holonomic Single-Qubit Quantum
Gates with Two Dark Paths in a Trapped Ion [41.36300605844117]
We show nonadiabatic holonomic single-qubit quantum gates on two dark paths in a trapped $171mathrmYb+$ ion based on four-level systems with resonant drives.
We find that nontrivial holonomic two-qubit quantum gates can also be realized within current experimental technologies.
arXiv Detail & Related papers (2021-01-19T06:57:50Z) - 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) - Entanglement generation via power-of-SWAP operations between dynamic
electron-spin qubits [62.997667081978825]
Surface acoustic waves (SAWs) can create moving quantum dots in piezoelectric materials.
We show how electron-spin qubits located on dynamic quantum dots can be entangled.
arXiv Detail & Related papers (2020-01-15T19:00:01Z)
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.