The theoretical description of the transverse momentum spectra: a unified model
arXiv:2012.08124 · doi:10.3390/universe9020111
Abstract
Analysis of transverse momentum distributions is a useful tool to understand the dynamics of relativistic particles produced in high energy collision. Finding a proper distribution function to approximate the spectra is a vastly developing area of research in particle physics. In this work, we have provided a detailed theoretical description of the unified statistical framework in high energy physics. We have tested the applicability of this framework on experimental data by analysing the transverse momentum spectra of pion produced in heavy-ion collision at RHIC and LHC. We have also attempted to explain the transverse momentum spectra of charged hadrons formed in pp collision at different energies using the unified statistical framework. This formalism has been proved to nicely explain the spectra of particles produced in soft processes as well hard scattering processes in a consistent manner.
References in corpus (5)
- Equilibrium Statistical-Thermal Models in High-Energy Physics
- Possible Implication of a Single Nonextensive Distribution for Hadron Production in High-Energy Collisions
- Transverse Momentum Spectra of Pions at LHC Energies
- Model comparison of the transverse momentum spectra of charged hadrons produced in collision at TeV
- A unified formalism to study the pseudorapidity spectra in heavy-ion collision
Cited by in corpus (3)
- Study of Isothermal Compressibility and Speed of Sound in the Hadronic Matter Formed in Heavy-Ion Collision using Unified Formalism
- Study of Heavy Hadron Production in Au + Au Collisions at a Center-of-Mass Energy of GeV
- Investigation of Nuclear Modification Factor from RHIC to LHC energies using Boltzmann Transport equation in conjunction with q-Weibull distribution