Please use this identifier to cite or link to this item: https://biore.bio.bg.ac.rs/handle/123456789/2890
Title: How to test path-length dependence in energy loss mechanisms: analysis leading to a new observable
Authors: Djordjevic, Magdalena
Zigic, Dusan
Djordjevic, Marko 
Auvinen, Jussi
Keywords: Nuclear Theory;High Energy Physics - Phenomenology
Issue Date: 19-Jun-2019
Rank: M21
Journal: Physical Review C
Volume: 99
Start page: 61902
Abstract: 
When traversing QCD medium, high $p_\perp$ partons lose energy, which is
typically measured by suppression, and also predicted by various energy loss
models. A crucial test of different energy loss mechanisms is how the energy
loss depends on the length of traversed medium (so-called path-length
dependence). The upcoming experimental results will allow to, at least in
principle, for the first time, clearly observe how the energy loss changes with
the size of the medium, in particular, by comparing already available $Pb+Pb$
measurements with now upcoming $Xe+Xe$ data at the LHC. However, in practice,
to actually perform such test, it becomes crucial to chose an optimal
observable. With respect to this, a ratio of observed suppression for the two
systems may seem a natural (and frequently mentioned) choice. We, however, show
that extracting the path-length dependence from this observable would not be
possible. We here provide an analytical derivation based on simple scaling
arguments, as well as detailed numerical calculations based on our advanced
energy loss framework, showing that a different observable is suitable for this
purpose. We call this observable path-length sensitive suppression ratio
($R_L^{AB}$) and provide our predictions before experimental data become
available. This predictions also clearly show that this observable will allow a
simple comparison of the related theoretical models with the experimental data,
and consequently to distinguish between different (underlying) energy loss
mechanisms, which is in turn crucial for understanding properties of created
QCD medium.
Description: 
4 pages, 3 figures
URI: https://biore.bio.bg.ac.rs/handle/123456789/2890
ISSN: 2469-9985
DOI: 10.1103/PhysRevC.99.061902
Appears in Collections:Journal Article

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