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    Variational simulation of quantum phase transitions induced by boundary fields

    Alan Duriez*, Andreia Saguia†, and Marcelo S. Sarandy‡

    • *Contact author: acduriez@id.uff.br
    • †Contact author: asaguia@id.uff.br
    • ‡Contact author: msarandy@id.uff.br

    Phys. Rev. B 112, 094401 – Published 2 September, 2025

    DOI: https://doi.org/10.1103/zfdt-1k63

    Abstract

    The characterization of quantum phase transitions is a fundamental task for the understanding of quantum phases of matter, with a number of potential applications in quantum technologies. In this work, we use digital quantum simulation as a resource to theoretically and experimentally study quantum phase transitions. More specifically, we implement the variational quantum eigensolver (VQE) algorithm for the one-dimensional spin-1/2 transverse-field Ising chain in the presence of boundary magnetic fields. Such fields can induce a rich phase diagram, including a first-order line and a continuous wetting transition, which is a quantum version of the classical wetting surface phenomenon. We present results for noiseless simulations of the associated quantum circuits as well as hardware results taken from a superconducting quantum processor. For different regions of the phase diagram, the quantum algorithm allows us to predict the critical value of the magnetic fields responsible for either the first- or second-order transitions occurring in the system.

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