English

Computational Electromagnetics Meets Spin Qubits: Controlling Noise Effects in Quantum Sensing and Computing

Quantum Physics 2024-09-18 v2 Computational Physics Optics

Abstract

Solid-state spin qubits have emerged as promising platforms for quantum information. Despite extensive efforts in controlling noise in spin qubit quantum applications, one important but less controlled noise source is near-field electromagnetic fluctuations. Low-frequency (MHz and GHz) electromagnetic fluctuations are significantly enhanced near lossy material components in quantum applications, including metallic/superconducting gates necessary for controlling spin qubits in quantum computing devices and materials/nanostructures to be probed in quantum sensing. Although controlling this low-frequency electromagnetic fluctuation noise is crucial for improving the performance of quantum devices, current efforts are hindered by computational challenges. In this paper, we leverage advanced computational electromagnetics techniques, especially fast and accurate volume integral equation based solvers, to overcome the computational obstacle. We introduce a quantum computational electromagnetics framework to control low-frequency magnetic fluctuation noise and enhance spin qubit device performance. Our framework extends the application of computational electromagnetics to spin qubit quantum devices. Furthermore, we demonstrate the application of our framework in realistic quantum devices. Our work paves the way for device engineering to control magnetic fluctuations and improve the performance of spin qubit quantum sensing and computing.

Keywords

Cite

@article{arxiv.2405.01830,
  title  = {Computational Electromagnetics Meets Spin Qubits: Controlling Noise Effects in Quantum Sensing and Computing},
  author = {Wenbo Sun and Sathwik Bharadwaj and Runwei Zhou and Dan Jiao and Zubin Jacob},
  journal= {arXiv preprint arXiv:2405.01830},
  year   = {2024}
}

Comments

13 pages, 6 figures

R2 v1 2026-06-28T16:15:05.243Z