Area of research
Nuclear and High Energy Physics · Astronomy and Astrophysics
Research interest
Research interests include Particle physics theoretical and experimental studies, High-Energy Particle Collisions Research, Quantum Chromodynamics and Particle Interactions, and Cosmology and Gravitation Theories.
Fast and flexible neutrino decoupling. Part I. The Standard Model
Energy and momentum dependence of the soft-axion interaction rate
<i>νν̅</i> production, annihilation, and scattering at MeV temperatures and NLO accuracy
Computing singlet scalar freeze-out with plasmon and plasmino states
Entropy production at electroweak bubble walls from scalar field fluctuations
Evolution of coupled scalar perturbations through smooth reheating. Part II. Thermal fluctuation regime
Double-graviton production from Standard Model plasma
QED corrections to the thermal neutrino interaction rate
Update on gravitational wave signals from post-inflationary phase transitions
Evolution of coupled scalar perturbations through smooth reheating. Part I. Dissipative regime
Soft contributions to the thermal Higgs width across an electroweak phase transition
Baryonic thermal screening mass at NLO
Maximal temperature of strongly-coupled dark sectors
Inflationary gravitational wave background as a tail effect
Heavy-flavor production and medium properties in high-energy nuclear collisions --What next?
Basics of Thermal Field Theory
Nonperturbative estimate of the heavy quark momentum diffusion coefficient
Critical point and scale setting in SU(3) plasma: An update
A relation between screening masses and real-time rates
University of Regensburg Publication Server (University of Regensburg) 2014cited by 19position: middle
Vector screening masses in the quark–gluon plasma and their physical significance