Electric Field Decay Without Pair Production: Lattice, Bosonization and Novel Worldline Instantons
Xu-Yao Hu, Matthew Kleban, Cedric Yu

TL;DR
This paper investigates the quantum decay of electric fields in a compact space, revealing stable configurations and oscillatory behavior for quantized fields, using multiple analytical and numerical methods in the massive Schwinger model.
Contribution
It uncovers a new set of instantons and demonstrates that electric fields are stable or oscillate depending on their quantization, challenging previous estimates.
Findings
Generic fields are stable and do not decay.
Quantized fields oscillate with small probability of decay.
Multiple methods confirm the novel instanton effects.
Abstract
Electric fields can spontaneously decay via the Schwinger effect, the nucleation of a charged particle-anti particle pair separated by a critical distance . What happens if the available distance is smaller than ? Previous work on this question has produced contradictory results. Here, we study the quantum evolution of electric fields when the field points in a compact direction with circumference using the massive Schwinger model, quantum electrodynamics in one space dimension with massive charged fermions. We uncover a new and previously unknown set of instantons that result in novel physics that disagrees with all previous estimates. In parameter regimes where the field value can be well-defined in the quantum theory, generic initial fields are in fact stable and do not decay, while initial values that are quantized in half-integer units of the charge …
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