Measurement of Quarkonium Polarization to Probe Qcd at The Lhc

Measurement of Quarkonium Polarization to Probe QCD at the LHC (Repost)  eBooks & eLearning

Posted by AvaxGenius at May 5, 2021
Measurement of Quarkonium Polarization to Probe QCD at the LHC (Repost)

Measurement of Quarkonium Polarization to Probe QCD at the LHC By Valentin Knünz
English | EPUB | 2017 | 166 Pages | ISBN : 3319499343 | 4.5 MB

This thesis discusses in detail the measurement of the polarizations of all S-wave vector quarkonium states in LHC proton-proton collisions with the CMS detector. Heavy quarkonium states constitute an ideal laboratory to study non-perturbative effects of quantum chromodynamics and to understand how quarks bind into hadrons.
The experimental results are interpreted through an original phenomenological approach, which leads to a coherent picture of quarkonium production cross sections and polarizations within a simple model, dominated by one single color-octet production mechanism. These findings provide new insights into the dynamics of heavy quarkonium production at the LHC, an important step towards a satisfactory understanding of hadron formation within the standard model of particle physics.

Measurement of Quarkonium Polarization to Probe QCD at the LHC (Springer Theses)  eBooks & eLearning

Posted by Nice_smile) at Feb. 22, 2017
Measurement of Quarkonium Polarization to Probe QCD at the LHC (Springer Theses)

Measurement of Quarkonium Polarization to Probe QCD at the LHC (Springer Theses) by Valentin Knünz
English | 2017 | ISBN: 3319499343 | 166 Pages | PDF | 9.58 MB

Measurement of Quarkonium Polarization to Probe QCD at the LHC  eBooks & eLearning

Posted by AvaxGenius at Jan. 8, 2018
Measurement of Quarkonium Polarization to Probe QCD at the LHC

Measurement of Quarkonium Polarization to Probe QCD at the LHC By Valentin Knünz
English | EPUB | 2017 | 166 Pages | ISBN : 3319499343 | 4.5 MB

This thesis discusses in detail the measurement of the polarizations of all S-wave vector quarkonium states in LHC proton-proton collisions with the CMS detector. Heavy quarkonium states constitute an ideal laboratory to study non-perturbative effects of quantum chromodynamics and to understand how quarks bind into hadrons.