A Theory of Self-Resonance After Inflation, Part 1: Adiabatic and Isocurvature Goldstone Modes
arXiv:1408.1396 · doi:10.1103/PhysRevD.90.123528
Abstract
We develop a theory of self-resonance after inflation. We study a large class of models involving multiple scalar fields with an internal symmetry. For illustration, we often specialize to dimension 4 potentials, but we derive results for general potentials. This is the first part of a two part series of papers. Here in Part 1 we especially focus on the behavior of long wavelengths modes, which are found to govern most of the important physics. Since the inflaton background spontaneously breaks the time translation symmetry and the internal symmetry, we obtain Goldstone modes; these are the adiabatic and isocurvature modes. We find general conditions on the potential for when a large instability band exists for these modes at long wavelengths. For the adiabatic mode, this is determined by a sound speed derived from the time averaged potential. While for the isocurvature mode, this is determined by a speed derived from a time averaged auxiliary potential. Interestingly, we find that this instability band usually exists for one of these classes of modes, rather than both simultaneously. We focus on backgrounds that evolve radially in field space, as setup by inflation, and also mention circular orbits, as relevant to Q-balls. In Part 2 [1] we derive the central behavior from the underlying description of many particle quantum mechanics, and introduce a weak breaking of the symmetry to study corrections to particle-antiparticle production from preheating.
22 pages in double column format, 7 figures. V2: Updated to version published in PRD
References in corpus (11)
- BICEP2 I: Detection Of B-mode Polarization at Degree Angular Scales
- String Cosmology: A Review
- Quantum Radiation of Oscillons
- Inflaton Fragmentation and Oscillon Formation in Three Dimensions
- End of inflation, oscillons and matter-antimatter asymmetry
- Generation of Coherent Structures After Cosmic Inflation
- Preheating after N-flation
- Inflation, Symmetry, and B-Modes
- A Theory of Self-Resonance After Inflation, Part 2: Quantum Mechanics and Particle-Antiparticle Asymmetry
- The Origin of the Universe as Revealed Through the Polarization of the Cosmic Microwave Background
- Inflation Driven by Unification Energy
Cited by in corpus (23)
- Nonperturbative Dynamics Of Reheating After Inflation: A Review
- Observing the Inflationary Reheating
- Preheating after Multifield Inflation with Nonminimal Couplings, I: Covariant Formalism and Attractor Behavior
- Analysis of Dark Matter Axion Clumps with Spherical Symmetry
- Preheating after multifield inflation with nonminimal couplings, II: Resonance Structure
- (P)reheating after minimal Plateau Inflation and constraints from CMB
- From Wires to Cosmology
- FLRW cosmology with EDSFD parametrization
- Toward an Effective Field Theory Approach to Reheating
- Oscillatory Attractors: A New Cosmological Phase
- Lectures on Reheating after Inflation
- Multifield Stochastic Particle Production: Beyond a Maximum Entropy Ansatz
- A Density Spike on Astrophysical Scales from an N-Field Waterfall Transition
- A Theory of Self-Resonance After Inflation, Part 2: Quantum Mechanics and Particle-Antiparticle Asymmetry
- Ground State Wave Function Overlap in Superconductors and Superfluids
- Thermal blocking of preheating
- Thermal gravitational-wave background in the general pre-inflationary scenario
- Revisiting primordial black holes formation from preheating instabilities: the case of Starobinsky inflation
- Shape of the inflaton potential and the efficiency of the universe heating
- Preheating and gravitational waves in large-field hilltop inflation
- Self-resonance during preheating: The case of -attractor models
- (P)reheating Effects of the Kähler Moduli Inflation I Model
- Fermion (non)reheating with a quartic inflaton potential