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The Chiral Magnetic Wave (CMW) phenomenon is essential to provide insights
into the strong interaction in QCD, the properties of the quark-gluon plasma,
and the topological characteristics of the early universe, offering a deeper
understanding of fundamental physics in high-energy collisions. Measurements of
the charge-dependent anisotropic flow coefficients are studied in Pb-Pb
collisions at center-of-mass energy per nucleon-nucleon collision
$\sqrt{s_{\mathrm{NN}}}=$ 5.02 TeV to probe the CMW. In particular, the slope
of the normalized difference in elliptic ($v_{2}$) and triangular ($v_{3}$)
flow coefficients of positively and negatively charged particles as a function
of their event-wise normalized number difference, is reported for inclusive and
identified particles. The slope $r_{3}^{\rm Norm}$ is found to be larger than
zero and to have a magnitude similar to $r_{2}^{\rm Norm}$, thus pointing to a
large background contribution for these measurements. Furthermore, $r_{2}^{\rm
Norm}$ can be described by a blast wave model calculation that incorporates
local charge conservation. In addition, using the event shape engineering
technique yields a fraction of CMW ($f_{\rm CMW}$) contribution to this
measurement which is compatible with zero. This measurement provides the very
first upper limit for $f_{\rm CMW}$, and in the 10-60% centrality interval it
is found to be 26% (38%) at 95% (99.7%) confidence level.
Probing the Chiral Magnetic Wave with charge-dependent flow measurements in Pb-Pb collisions at the LHC / Acharya, S., Adamová, D., Aglieri Rinella, G., Agnello, M., Agrawal, N., Ahammed, Z., Ahmad, S., Ahn, S.U., Ahuja, I., Akindinov, A., Al-Turany, M., Aleksandrov, D., Alessandro, B., Alfanda, H.M., Alfaro Molina, R., Ali, B., Alici, A., Alizadehvandchali, N., Alkin, A., Alme, J., et al.. - In: JOURNAL OF HIGH ENERGY PHYSICS. - ISSN 1029-8479. - STAMPA. - 2023:12(2023), pp. 1-30. [10.1007/JHEP12(2023)067]
Probing the Chiral Magnetic Wave with charge-dependent flow measurements in Pb-Pb collisions at the LHC
S. Acharya;D. Adamová;G. Aglieri Rinella;M. Agnello;N. Agrawal;Z. Ahammed;S. Ahmad;S. U. Ahn;I. Ahuja;A. Akindinov;M. Al-Turany;D. Aleksandrov;B. Alessandro;H. M. Alfanda;R. Alfaro Molina;B. Ali;A. Alici;N. Alizadehvandchali;A. Alkin;J. Alme;G. Alocco;T. Alt;A. R. Altamura;I. Altsybeev;J. R. Alvarado;M. N. Anaam;C. Andrei;N. Andreou;A. Andronic;V. Anguelov;F. Antinori;P. Antonioli;N. Apadula;L. Aphecetche;H. Appelshäuser;C. Arata;S. Arcelli;M. Aresti;R. Arnaldi;J. G. M. C. A. Arneiro;I. C. Arsene;M. Arslandok;A. Augustinus;R. Averbeck;M. D. Azmi;H. Baba;A. Badalà;J. Bae;Y. W. Baek;X. Bai;R. Bailhache;Y. Bailung;A. Balbino;A. Baldisseri;B. Balis;D. Banerjee;Z. Banoo;R. Barbera;F. Barile;L. Barioglio;M. Barlou;B. Barman;G. G. Barnaföldi;L. S. Barnby;V. Barret;L. Barreto;C. Bartels;K. Barth;E. Bartsch;N. Bastid;S. Basu;G. Batigne;D. Battistini;B. Batyunya;D. Bauri;J. L. Bazo Alba;I. G. Bearden;C. Beattie;P. Becht;D. Behera;I. Belikov;A. D. C. Bell Hechavarria;F. Bellini;R. Bellwied;S. 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2023
Abstract
The Chiral Magnetic Wave (CMW) phenomenon is essential to provide insights
into the strong interaction in QCD, the properties of the quark-gluon plasma,
and the topological characteristics of the early universe, offering a deeper
understanding of fundamental physics in high-energy collisions. Measurements of
the charge-dependent anisotropic flow coefficients are studied in Pb-Pb
collisions at center-of-mass energy per nucleon-nucleon collision
$\sqrt{s_{\mathrm{NN}}}=$ 5.02 TeV to probe the CMW. In particular, the slope
of the normalized difference in elliptic ($v_{2}$) and triangular ($v_{3}$)
flow coefficients of positively and negatively charged particles as a function
of their event-wise normalized number difference, is reported for inclusive and
identified particles. The slope $r_{3}^{\rm Norm}$ is found to be larger than
zero and to have a magnitude similar to $r_{2}^{\rm Norm}$, thus pointing to a
large background contribution for these measurements. Furthermore, $r_{2}^{\rm
Norm}$ can be described by a blast wave model calculation that incorporates
local charge conservation. In addition, using the event shape engineering
technique yields a fraction of CMW ($f_{\rm CMW}$) contribution to this
measurement which is compatible with zero. This measurement provides the very
first upper limit for $f_{\rm CMW}$, and in the 10-60% centrality interval it
is found to be 26% (38%) at 95% (99.7%) confidence level.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11583/2990266
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