Vacuum Decay in Real Time and Imaginary Time Formalisms
arXiv:1904.08565 · doi:10.1103/PhysRevD.100.016011
Abstract
We analyze vacuum tunneling in quantum field theory in a general formalism by using the Wigner representation. In the standard instanton formalism, one usually approximates the initial false vacuum state by an eigenstate of the field operator, imposes Dirichlet boundary conditions on the initial field value, and evolves in imaginary time. This approach does not have an obvious physical interpretation. However, an alternative approach does have a physical interpretation: in quantum field theory, tunneling can happen via classical dynamics, seeded by initial quantum fluctuations in both the field and its momentum conjugate, which was recently implemented in Ref. [1]. We show that the Wigner representation is a useful framework to calculate and understand the relationship between these two approaches. We find there are two, related, saddle point approximations for the path integral of the tunneling process: one corresponds to the instanton solution in imaginary time and the other one corresponds to classical dynamics from initial quantum fluctuations in real time. The classical approximation for the dynamics of the latter process is justified only in a system with many degrees of freedom, as can appear in field theory due to high occupancy of nucleated bubbles, while it is not justified in single particle quantum mechanics, as we explain. We mention possible applications of the real time formalism, including tunneling when the instanton vanishes, or when the imaginary time contour deformation is not possible, which may occur in cosmological settings.
10 pages in double column format, 2 figures. V2: Further clarifications. Updated to resemble version published in PRD
References in corpus (1)
Cited by in corpus (22)
- FindBounce: package for multi-field bounce actions
- Functional methods for false vacuum decay in real time
- Inflationary Butterfly Effect: Non-perturbative Dynamics From Small-Scale Features
- Black hole induced false vacuum decay from first principles
- Black hole induced false vacuum decay: The role of greybody factors
- Quantitative Analysis of the Stochastic Approach to Quantum Tunneling
- Flyover vacuum decay
- Bubble Clustering in Cosmological First Order Phase Transitions
- Analytic thin wall false vacuum decay rate
- False vacuum decay rates, more precisely
- Tunnelling and dynamical violation of the Null Energy Condition
- Bubble velocities and oscillon precursors in first-order phase transitions
- Mass Renormalization in Lattice Simulations of False Vacuum Decay
- Particle production induced by vacuum decay in real time dynamics
- Vacuum Decay Induced by Quantum Fluctuations
- Occurrence of semiclassical vacuum decay
- Finite-Temperature Instantons from First Principles
- Generalised escape paths for dynamical tunneling in QFT
- Toward quantum tunneling from excited states: Recovering imaginary-time instantons from a real-time analysis
- Higgs chameleon
- Gravitational waves from vacuum bubbles: Ultraviolet dependence on wall thickness
- Quantum Fluctuations of Fields and Stress Tensors