pith. sign in

Kinks in the Hartree approximation

1 Pith paper cite this work. Polarity classification is still indexing.

1 Pith paper citing it
abstract

The topological defects of the lambda phi^4 theory, kink and antikink, are studied in the Hartree approximation. This allows us to discuss quantum effects on the defects in both stationary and dynamical systems. The kink mass is calculated for a number of parameters, and compared to classical, one loop and Monte Carlo results known from the literature. We discuss the thermalization of the system after a kink antikink collision. A classical result, the existence of a critical speed, is rederived and shown for the first time in the quantum theory. We also use kink antikink collisions as a very simple toy model for heavy ion collisions and discuss the differences and similarities, for example in the pressure. Finally, using the Hartree Ensemble Approximation allows us to study kink antikink nucleation starting from a thermal (Bose Einstein) distribution. In general our results indicate that on a qualitative level there are few differences with the classical results, but on a quantitative level there are some import ones.

fields

hep-th 1

years

2026 1

verdicts

UNVERDICTED 1

representative citing papers

Quantum-Corrected Q-balls in the Friedberg-Lee-Sirlin Model

hep-th · 2026-05-24 · unverdicted · novelty 6.0

Hartree quantum fluctuations in 3+1D simulations of the Friedberg-Lee-Sirlin model produce a regime where fluctuations carry significant Noether charge, periodic charge exchange occurs, and some classically stable Q-balls become unstable.

citing papers explorer

Showing 1 of 1 citing paper.

  • Quantum-Corrected Q-balls in the Friedberg-Lee-Sirlin Model hep-th · 2026-05-24 · unverdicted · none · ref 70 · internal anchor

    Hartree quantum fluctuations in 3+1D simulations of the Friedberg-Lee-Sirlin model produce a regime where fluctuations carry significant Noether charge, periodic charge exchange occurs, and some classically stable Q-balls become unstable.