A hard thermal loop benchmark for the extraction of the nonperturbative potential
arXiv:1304.4154 · doi:10.1103/PhysRevD.87.114019
Abstract
The extraction of the finite temperature heavy quark potential from lattice QCD relies on a spectral analysis of the Wilson loop. General arguments tell us that the lowest lying spectral peak encodes, through its position and shape, the real and imaginary part of this complex potential. Here we benchmark this extraction strategy using leading order hard-thermal loop (HTL) calculations. I.e. we analytically calculate the Wilson loop and determine the corresponding spectrum. By fitting its lowest lying peak we obtain the real- and imaginary part and confirm that the knowledge of the lowest peak alone is sufficient for obtaining the potential. Access to the full spectrum allows an investigation of spectral features that do not contribute to the potential but can pose a challenge to numerical attempts of an analytic continuation from imaginary time data. Differences in these contributions between the Wilson loop and gauge fixed Wilson line correlators are discussed. To better understand the difficulties in a numerical extraction we deploy the Maximum Entropy method with extended search space to HTL correlators in Euclidean time and observe how well the known spectral function and values for the real and imaginary part are reproduced. Possible venues for improvement of the extraction strategy are discussed.
18 pages, 15 figures
References in corpus (12)
- J/psi Production vs Centrality, Transverse Momentum, and Rapidity in Au+Au Collisions at sqrt(s_NN) = 200 GeV
- Static quark-antiquark pairs at finite temperature
- Real and imaginary-time correlators in a thermal medium
- Charmonium properties in hot quenched lattice QCD
- Quarkonium correlators and spectral functions at zero and finite temperature
- Heavy quarkonium in any channel in resummed hot QCD
- Non-relativistic bound states at finite temperature (I): the hydrogen atom
- A test on analytic continuation of thermal imaginary-time data
- Extraction of Spectral Functions from Dyson-Schwinger Studies via the Maximum Entropy Method
- Heavy quark medium polarization at next-to-leading order
- Renormalization of the cyclic Wilson loop
- The spin-orbit potential and Poincaré invariance in finite temperature pNRQCD
Cited by in corpus (21)
- A novel Bayesian approach to spectral function reconstruction
- Heavy Quarkonium in Extreme Conditions
- Static quark-antiquark potential in the quark-gluon plasma from lattice QCD
- Quarkonium at finite temperature: Towards realistic phenomenology from first principles
- Static quark anti-quark interactions at non-zero temperature from lattice QCD
- Thermal Broadening of Bottomonia: Lattice Non-Relativistic QCD with Extended Operators
- A gauge invariant Debye mass and the complex heavy-quark potential
- Quarkonium in-medium properties from realistic lattice NRQCD
- Thermodynamics of strong-interaction matter from Lattice QCD
- Lattice calculation of the heavy quark potential at non-zero temperature
- Un-screened forces in Quark-Gluon Plasma?
- Lattice Calculations of Heavy Quark Potential at Finite Temperature
- Quarkonium propagation in the quark gluon plasma
- Bayesian inference of real-time dynamics from lattice QCD
- Interaction potential between heavy in color octet configuration in QGP
- Proper static potential in classical lattice gauge theory at finite T
- Quarkonia at finite temperature in relativistic heavy ion collisions
- The in-medium heavy quark potential from quenched and dynamical lattice QCD
- In-medium bottomonium properties from lattice NRQCD calculations with extended meson operators
- Static quark anti-quark interactions at non-zero temperature from lattice QCD
- Finite Temperature Quarkonia Spectral Functions in the Pseudoscalar Channel