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    Simulating plasma wave propagation on a superconducting quantum chip

    Bhuvanesh Sundar1,*,†, Bram Evert1,†, Vasily Geyko2, Andrew Patterson3, Ilon Joseph2,‡, and Yuan Shi4,§

    • *Contact author: bsundar@rigetti.com
    • †These authors contributed equally to this work.
    • ‡Contact author: joseph5@llnl.gov
    • §Contact author: yuan.shi@colorado.edu

    Phys. Rev. Applied 25, 024077 – Published 25 February, 2026

    DOI: https://doi.org/10.1103/lxr6-t7vb

    Abstract

    Quantum computers may one day enable the efficient simulation of strongly coupled plasmas that lie beyond the reach of classical computation in regimes where quantum effects are important and the scale separation is large. In this article, we take a first step toward efficient simulation of quantum plasmas by demonstrating linear plasma wave propagation on a superconducting quantum chip. Using high-fidelity and highly expressive device-native gates, combined with an error-mitigation technique, we simulate the scattering of laser pulses from inhomogeneous plasmas. Our approach is made feasible by the identification of a suitable local spin model whose excitations mimic plasma waves, and whose circuit implementation requires a lower gate count than other proposed approaches that would require a future fault-tolerant quantum computer. This work opens avenues to study more complicated phenomena that cannot be simulated efficiently on classical computers, such as nonlinear quantum dynamics when strongly coupled plasmas are driven out of equilibrium.

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