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Search for jet quenching with high pT hadron azimuthal anisotropy using subevent cumulants in pPb collisions at CMS
Search for jet quenching with high pT hadron azimuthal anisotropy using subevent cumulants in pPb collisions at CMS
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Search for jet quenching with high pT hadron azimuthal anisotropy using subevent cumulants in pPb collisions at CMS
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Search for jet quenching with high pT hadron azimuthal anisotropy using subevent cumulants in pPb collisions at CMS
Search for jet quenching with high pT hadron azimuthal anisotropy using subevent cumulants in pPb collisions at CMS

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Search for jet quenching with high pT hadron azimuthal anisotropy using subevent cumulants in pPb collisions at CMS
Search for jet quenching with high pT hadron azimuthal anisotropy using subevent cumulants in pPb collisions at CMS
Conference Proceeding

Search for jet quenching with high pT hadron azimuthal anisotropy using subevent cumulants in pPb collisions at CMS

2025
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Overview
Measurements at the LHC have provided evidence for collective behavior in high-multiplicity proton-lead (pPb) collisions through multiparticle correlation techniques. Yet, no conclusive evidence of jet quenching — the energy loss of high-pT partons as they traverse the medium — has been detected in pPb. This raises the intriguing question: How can a medium described by hydrodynamics, and that significantly modifies the distribution of final-state hadrons, yet has no significant impact on the distribution of high-pT particles? To investigate this, a comprehensive study of differential Fourier coefficients (vn) in particle transverse momentum (pT) and event multiplicity is presented in pPb collisions recorded by the CMS experiment at a nucleon-nucleon centerof- mass energy √sNN = 8.16 TeV. In particular, new measurements of pT-differential multiparticle cumulants using the subevent method probes an extended phase space region up to a high particle pT. Additionally, we compare the results between pPb and PbPb collisions in the same multiplicity window.