Thermodynamic potentials from shifted boundary conditions: the scalar-field theory case
arXiv:1110.3136 · doi:10.1007/JHEP11(2011)087
Abstract
In a thermal field theory, the cumulants of the momentum distribution can be extracted from the dependence of the Euclidean path integral on a shift in the fields built into the temporal boundary condition. When combined with the Ward identities associated with the invariance of the theory under the Poincare' group, thermodynamic potentials such as the entropy or the pressure can be directly inferred from the response of the system to the shift. Crucially the argument holds, up to harmless finite-size and discretization effects, even if translational and rotational invariance are broken to a discrete subgroup of finite shifts and rotations such as in a lattice box. The formulas are thus applicable at finite lattice spacing and volume provided the derivatives are replaced by their discrete counterpart, and no additive or multiplicative ultraviolet-divergent renormalizations are needed to take the continuum limit. In this paper we present a complete derivation of the relevant formulas in the scalar field theory, where several technical complications are avoided with respect to gauge theories. As a by-product we obtain a recursion relation among the cumulants of the momentum distribution, and formulae for finite-volume corrections to several well-known thermodynamic identities.
22 pages
References in corpus (5)
- High-Precision Thermodynamics and Hagedorn Density of States
- Thermal momentum distribution from path integrals with shifted boundary conditions
- Symmetries and exponential error reduction in Yang-Mills theories on the lattice
- A novel approach for computing glueball masses and matrix elements in Yang-Mills theories on the lattice
- Finite Volume Effects in Thermal Field Theory
Cited by in corpus (16)
- Basics of thermal field theory -- a tutorial on perturbative computations
- The QCD equation of state from the lattice
- The density of states in gauge theories
- Equation of state of the SU() Yang-Mills theory: a precise determination from a moving frame
- Inhomogeneity of rotating gluon plasma and Tolman-Ehrenfest law in imaginary time: lattice results for fast imaginary rotation
- Implications of Poincare symmetry for thermal field theories in finite-volume
- Energy-momentum tensor on the lattice: non-perturbative renormalization in Yang--Mills theory
- Exceptional thermodynamics: The equation of state of G(2) gauge theory
- Equation of state of a relativistic theory from a moving frame
- Geometrically confined thermal field theory: Finite size corrections and phase transitions
- Relativistic hydrodynamics from projection operator method
- Energy--momentum tensor on the lattice: recent developments
- Fixed-scale approach to finite-temperature lattice QCD with shifted boundaries
- Utility of geometry in lattice QCD simulations
- Thermal field theories and shifted boundary conditions
- The energy-momentum tensor in lattice QCD and the Equation of State