Coulomb interacting Bose-Einstein correlations in Fourier space
Aletta Purzsa

TL;DR
This paper introduces a novel, efficient method for analyzing Coulomb interactions in Bose-Einstein correlations within femtoscopy, enhancing the resolution of quark-gluon plasma structures in high-energy physics experiments.
Contribution
It presents a new mathematical approach that improves accuracy and reduces computational complexity in Coulomb correction calculations for femtoscopy.
Findings
More precise Coulomb correction method developed
Less computationally demanding than previous techniques
Applicable to complex source function shapes in experiments
Abstract
In high-energy heavy-ion physics experiments, a state of matter is created that existed in the early Universe: the quark-gluon plasma. This strongly interacting matter exists in today's experiments only within a range of a few femtometers and for a duration of a few femtometers per speed of light, making its resolution with optical tools impossible. However, there is a method that allows for a closer look into the structure of the quark-gluon plasma: femtoscopy. Initially used in astronomy, femtoscopy is based on the quantum mechanical indistinguishability of identical particles, which causes them to arrive at detectors in a correlated manner. The measurable correlation is related to the spacetime structure of the particle-emitting source, which in heavy-ion physics is the quark-gluon plasma created in collisions. For free particles, a relatively simple relationship exists between the…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Atomic and Subatomic Physics Research · Quantum Mechanics and Applications
