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Quantum Computation of Phase Transition in the Massive Schwinger Model

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arxiv 2110.13046 v1 pith:ZONK7WZ3 submitted 2021-10-25 quant-ph hep-lathep-th

classification quant-phhep-lathep-th
keywords phasetransitioncomputationcriticalmodelpointquantumschwinger
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

As pointed out by Coleman, physical quantities in the Schwinger model depend on a parameter $\theta$ that determines the background electric field. There is a phase transition for $\theta = \pi$ only. We develop a momentum space formalism on a lattice and use it to perform a quantum computation of the critical point of this phase transition on the NISQ device IMB Q Lima. After error mitigation, our results give strong indication of the existence of a critical point at $m/e\simeq 0.32$, where $m$ is the bare fermion mass and $e$ is the coupling strength, in good agreement with the classical numerical result $m/e \simeq 0.3335$.

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Cited by 1 Pith paper

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  1. Critical behavior of the Schwinger model via gauge-invariant VUMPS

    hep-lat 2024-12 conditional novelty 6.0 of 10

    The gauge-invariant VUMPS algorithm determines the continuum critical mass of the Schwinger model as (m/g)c = 0.333556(5) and produces data collapse consistent with Ising critical exponents.

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