A new effective field theory for heavy quarks in the quark-gluon plasma

A bstract An effective field theory framework is developed to study the interaction of heavy quarks in strongly coupled quark-gluon plasma (QGP). The latter is treated as a relativistic non-dissipative colorless fluid which can be studied using a derivatively coupled effective field theory based on previous work. Coupling this to heavy quarks provides a systematic way to obtain the interaction between the heavy quark and phonons, excitations of the fluid. In particular we calculate the quasiparticle width of heavy quark to phonon and phonon-heavy quark scattering in a thermal medium.

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Publication Details

Journal
Journal of High Energy Physics
Published
2026-08-21
DOI
https://doi.org/10.1007/jhep08(2026)172
Primary Topic
High-Energy Particle Collisions Research
Type
article
Field-Weighted Citation Impact
0.00

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article

A new effective field theory for heavy quarks in the quark-gluon plasma

C. Sirimanna, Jyotirmoy Roy, Andreas Kirchner, Berndt Müller
Journal of High Energy Physics
High-Energy Particle Collisions Research
article

A new effective field theory for heavy quarks in the quark-gluon plasma

C. Sirimanna, Jyotirmoy Roy, Andreas Kirchner, Berndt Müller
article en

Abstract

A bstract An effective field theory framework is developed to study the interaction of heavy quarks in strongly coupled quark-gluon plasma (QGP). The latter is treated as a relativistic non-dissipative colorless fluid which can be studied using a derivatively coupled effective field theory based on previous work. Coupling this to heavy quarks provides a systematic way to obtain the interaction between the heavy quark and phonons, excitations of the fluid. In particular we calculate the quasiparticle width of heavy quark to phonon and phonon-heavy quark scattering in a thermal medium.

Journal of High Energy PhysicsVol. 2026(8)
Duke University (US)
National Science Foundation, U.S. Department of Energy, Office of Science, Nuclear Physics
Openalex Percentile: Top 11%
High-Energy Particle Collisions Research
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