Abstract

There exists a clear physical motivation for theoretical studies of the vacuum instability related to the production of electron-positron pairs from a vacuum due to strong external electric fields. Various nonperturbative (with respect to the external fields) calculation methods were developed. Some of these methods are based on possible exact solutions of the Dirac equation. Unfortunately, there are only few cases when such solutions are known. Recently, an approximate but still nonperturbative approach to treat the vacuum instability caused by slowly varying $t$-electric potential steps (time dependent external fields that vanish as $|t|\rightarrow\infty$), which does not depend on the existence of the corresponding exact solutions, was formulated in Ref. [S. P. Gavrilov, D. M. Gitman, Phys. Rev. D \textbf{95}, 076013 (2017)]. Here, we present an approximate calculation method to treat nonperturbatively the vacuum instability in arbitrary weakly inhomogeneous $x$-electric potential steps (time-independent electric fields of a constant direction that are concentrated in restricted space areas, which means that the fields vanish as $|x|\rightarrow\infty$) in the absence of the corresponding exact solutions. Defining the weakly inhomogeneous regime in general terms, we demonstrate the universal character of the vacuum instability. This universality is associated with a large density of states excited from the vacuum by the electric field. Such a density appears in our approach as a large parameter. We derive universal representations for the total number and current density of the created particles. Relations of these representations with a locally constant field approximation for Schwinger's effective action are found.

Highlights

  • Since the work of Schwinger pointing to the possible vacuum instability due to the pair production in strong external electriclike fields [1], this effect has always attracted the attention of physicists

  • An approximate but still nonperturbative approach to treat the vacuum instability caused by slowly varying t-electric potential steps, which does not depend on the existence of the corresponding exact solutions, was formulated in the reference [S

  • We present an approximate calculation method to treat nonperturbatively the vacuum instability in arbitrary weakly inhomogeneous x-electric potential steps in the absence of the corresponding exact solutions

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Summary

INTRODUCTION

Since the work of Schwinger pointing to the possible vacuum instability due to the pair production in strong external electriclike fields (the Schwinger effect) [1], this effect has always attracted the attention of physicists. It is natural to start with considering the vacuum instability caused by time-independent inhomogeneous electric fields of a constant direction that depend on only one coordinate x and are concentrated in restricted space areas, which means that the fields vanish as jxj → ∞ The latter fields represent a kind of so-called x-electric potential steps for charged particles. Similar to the case of t-electric potential steps, special sets of exact solutions of the relativistic wave equations with corresponding external fields are crucial in this formulation. We develop a nonperturbative approach that allows one to treat the vacuum instability effects for arbitrary weakly inhomogeneous x-electric potential steps in the absence of the corresponding exact solutions.

WEAKLY INHOMOGENEOUS POTENTIAL STEPS
MEAN CURRENT
CONCLUDING REMARKS

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