_version_ 1866929637991383040
author Das, Santosh K.
Palni, Prabhakar
Sarkar, Amal
Agotiya, Vineet Kumar
Bandyopadhyay, Aritra
Bhaduri, Partha Pratim
Datta, Saumen
Desai, Vaishnavi
Dey, Debarshi
Greco, Vincenzo
Jamal, Mohammad Yousuf
Kaur, Gurleen
Kumari, Manisha
Maity, Monideepa
Pal, Subrata
Patra, Binoy Krishna
Pooja
Prakash, Jai
Priyadarshini, Manaswini
R, Vyshakh B
Ruggieri, Marco
Sahoo, Nihar Ranjan
Sahoo, Raghunath
Shahi, Om
Sharma, Devanshu
Sharma, Rishabh
Sharma, Rishi
author_facet Das, Santosh K.
Palni, Prabhakar
Sarkar, Amal
Agotiya, Vineet Kumar
Bandyopadhyay, Aritra
Bhaduri, Partha Pratim
Datta, Saumen
Desai, Vaishnavi
Dey, Debarshi
Greco, Vincenzo
Jamal, Mohammad Yousuf
Kaur, Gurleen
Kumari, Manisha
Maity, Monideepa
Pal, Subrata
Patra, Binoy Krishna
Pooja
Prakash, Jai
Priyadarshini, Manaswini
R, Vyshakh B
Ruggieri, Marco
Sahoo, Nihar Ranjan
Sahoo, Raghunath
Shahi, Om
Sharma, Devanshu
Sharma, Rishabh
Sharma, Rishi
contents The hot and dense QCD matter, known as the Quark-Gluon Plasma (QGP), is explored through heavy-ion collision experiments at the LHC and RHIC. Jets and heavy flavors, produced from the initial hard scattering, are used as hard probes to study the properties of the QGP. Recent experimental observations on jet quenching and heavy-flavor suppression have strengthened our understanding, allowing for fine-tuning of theoretical models in hard probes. The second conference, HOT QCD Matter 2024, was organized to bring the community together for discussions on key topics in the field. This article comprises 15 sections, each addressing various aspects of hard probes in relativistic heavy-ion collisions, offering a snapshot of current experimental observations and theoretical advancements. The article begins with a discussion on memory effects in the quantum evolution of quarkonia in the quark-gluon plasma, followed by an experimental review, new insights on jet quenching at RHIC and LHC, and concludes with a machine learning approach to heavy flavor production at the Large Hadron Collider.
format Preprint
id arxiv_https___arxiv_org_abs_2412_14026
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Dynamics of Hot QCD Matter 2024 -- Hard Probes
Das, Santosh K.
Palni, Prabhakar
Sarkar, Amal
Agotiya, Vineet Kumar
Bandyopadhyay, Aritra
Bhaduri, Partha Pratim
Datta, Saumen
Desai, Vaishnavi
Dey, Debarshi
Greco, Vincenzo
Jamal, Mohammad Yousuf
Kaur, Gurleen
Kumari, Manisha
Maity, Monideepa
Pal, Subrata
Patra, Binoy Krishna
Pooja
Prakash, Jai
Priyadarshini, Manaswini
R, Vyshakh B
Ruggieri, Marco
Sahoo, Nihar Ranjan
Sahoo, Raghunath
Shahi, Om
Sharma, Devanshu
Sharma, Rishabh
Sharma, Rishi
Nuclear Experiment
High Energy Physics - Experiment
High Energy Physics - Phenomenology
Nuclear Theory
The hot and dense QCD matter, known as the Quark-Gluon Plasma (QGP), is explored through heavy-ion collision experiments at the LHC and RHIC. Jets and heavy flavors, produced from the initial hard scattering, are used as hard probes to study the properties of the QGP. Recent experimental observations on jet quenching and heavy-flavor suppression have strengthened our understanding, allowing for fine-tuning of theoretical models in hard probes. The second conference, HOT QCD Matter 2024, was organized to bring the community together for discussions on key topics in the field. This article comprises 15 sections, each addressing various aspects of hard probes in relativistic heavy-ion collisions, offering a snapshot of current experimental observations and theoretical advancements. The article begins with a discussion on memory effects in the quantum evolution of quarkonia in the quark-gluon plasma, followed by an experimental review, new insights on jet quenching at RHIC and LHC, and concludes with a machine learning approach to heavy flavor production at the Large Hadron Collider.
title Dynamics of Hot QCD Matter 2024 -- Hard Probes
topic Nuclear Experiment
High Energy Physics - Experiment
High Energy Physics - Phenomenology
Nuclear Theory
url https://arxiv.org/abs/2412.14026