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Dive into the research topics where P. Rosier is active.

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Featured researches published by P. Rosier.


arXiv: High Energy Physics - Experiment | 2015

Spin physics and TMD studies at A Fixed-Target ExpeRiment at the LHC (AFTER@LHC)

Jean-Philippe Lansberg; M. Anselmino; R. Arnaldi; Stanley J. Brodsky; V. Chambert; W. den Dunnen; J. P. Didelez; B. Genolini; E.G. Ferreiro; F. Fleuret; Yuanning Gao; C. Hadjidakis; I. Hrvinacova; C. Lorcé; Laure Marie Massacrier; R. Mikkelsen; Cristian Pisano; A. Rakotozafindrabe; P. Rosier; I. Schienbein; Marc Schlegel; E. Scomparin; B. Trzeciak; U.I. Uggerhøj; R. Ulrich; Zishuo Yang

We report on the opportunities for spin physics and Transverse-Momentum Dependent distribution (TMD) studies at a future multi-purpose fixed-target experiment using the proton or lead ion LHC beams extracted by a bent crystal. The LHC multi-TeV beams allow for the most energetic fixed-target experiments ever performed, opening new domains of particle and nuclear physics and complementing that of collider physics, in particular that of RHIC and the EIC projects. The luminosity achievable with AFTER@LHC using typical targets would surpass that of RHIC by more that 3 orders of magnitude in a similar energy region. In unpolarised proton-proton collisions, AFTER@LHC allows for measurements of TMDs such as the Boer-Mulders quark distributions, the distribution of unpolarised and linearly polarised gluons in unpolarised protons. Using the polarisation of hydrogen and nuclear targets, one can measure transverse single-spin asymmetries of quark and gluon sensitive probes, such as, respectively, Drell-Yan pair and quarkonium production. The fixed-target mode has the advantage to allow for measurements in the target-rapidity region, namely at large x^uparrow in the polarised nucleon. Overall, this allows for an ambitious spin program which we outline here.


arXiv: High Energy Physics - Experiment | 2014

AFTER@LHC: a precision machine to study the interface between particle and nuclear physics

Jean-Philippe Lansberg; R. Arnaldi; Stanley J. Brodsky; V. Chambert; J. P. Didelez; B. Genolini; E. G. Ferreiro; F. Fleuret; C. Hadjidakis; C. Lorce; A. Rakotozafindrabe; P. Rosier; I. Schienbein; E. Scomparin; U.I. Uggerhøj

We outline the opportunities to study with high precision the interface between nuclear and particle physics, which are offered by a next generation and multi-purpose fixed-target experiment exploiting the proton and ion LHC beams extracted by a bent crystal.


arXiv: Nuclear Experiment | 2016

Studies of Transverse-Momentum-Dependent distributions with A Fixed-Target ExpeRiment using the LHC beams (AFTER@LHC)

Laure Marie Massacrier; P. Rosier; Cristian Pisano; B. Trzeciak; Stanley J. Brodsky; M. Anselmino; W. Den Dunnen; F. Fleuret; R. Arnaldi; R. Mikkelsen; Jean-Philippe Lansberg; Yuanning Gao; J. P. Didelez; Zishuo Yang; E. Scomparin; C. Lorcé; V. Chambert; B. Genolini; R. Ulrich; I. Hřivnáčová; C. Hadjidakis; Marc Schlegel; I. Schienbein; U.I. Uggerhøj; E.G. Ferreiro; A. Rakotozafindrabe

We report on the studies of Transverse-Momentum-Dependent distributions (TMDs) at a future fixed-target experiment –AFTER@LHC– using the p+ or Pb ion LHC beams, which would be the most energetic fixed-target experiment ever performed. AFTER@LHC opens new domains of particle and nuclear physics by complementing collider-mode experiments, in particular those of RHIC and the EIC projects. Both with an extracted beam by a bent crystal or with an internal gas target, the luminosity achieved by AFTER@LHC surpasses that of RHIC by up to 3 orders of magnitude. With an unpolarised target, it allows for measurements of TMDs such as the Boer-Mulders quark distributions and the distribution of unpolarised and linearly polarised gluons in unpolarised protons. Using polarised targets, one can access the quark and gluon Sivers TMDs through single transverse-spin asymmetries in Drell-Yan and quarkonium production. In terms of kinematics, the fixed-target mode combined with a detector covering ηlab ∈ [1, 5] allows one to measure these asymmetries at large x↑ in the polarised nucleon.


Nuclear Physics | 2013

Ultra-relativistic heavy–ion physics with AFTER@LHC

A. Rakotozafindrabe; R. Arnaldi; Stanley J. Brodsky; V. Chambert; J. P. Didelez; B. Genolini; E. G. Ferreiro; F. Fleuret; C. Hadjidakis; Jean-Philippe Lansberg; P. Rosier; I. Schienbein; Enrico Scomparin; U.I. Uggerhøj

Abstract We outline the opportunities for ultra-relativistic heavy–ion physics which are offered by a next generation and multi-purpose fixed-target experiment exploiting the proton and ion LHC beams extracted by a bent crystal.


Physics of Particles and Nuclei | 2014

Spin physics at a fixed-target experiment at the LHC (AFTER@LHC)

A. Rakotozafindrabe; M. Anselmino; R. Arnaldi; Stanley J. Brodsky; V. Chambert; J. P. Didelez; B. Genolini; E. G. Ferreiro; F. Fleuret; C. Hadjidakis; Jean-Philippe Lansberg; C. Lorce; P. Rosier; Ingo Schienbein; Enrico Scomparin; U.I. Uggerhøj

We outline the opportunities for spin physics which are offered by a next generation and multi-purpose fixed-target experiment exploiting the proton LHC beam extracted by a bent crystal. In particular, we focus on the study of single transverse spin asymetries with the polarisation of the target.


arXiv: High Energy Physics - Experiment | 2013

Spin and diffractive physics with A Fixed-Target ExpeRiment at the LHC (AFTER@LHC)

C. Lorce; M. Anselmino; R. Arnaldi; Stanley J. Brodsky; V. Chambert; J. P. Didelez; B. Genolini; E. G. Ferreiro; F. Fleuret; C. Hadjidakis; Jean-Philippe Lansberg; A. Rakotozafindrabe; P. Rosier; I. Schienbein; E. Scomparin; U. I. Uggerho

We report on the spin and diffractive physics at a future multi-purpose f xed-target experiment with proton and lead LHC beams extracted by a bent crystal. The LHC multi-TeV beams allow for the most energetic f xed-target experiments ever performed, opening new domains of particle and nuclear physics and complementing that of collider physics, in particular that of RHIC and the EIC projects. The luminosity achievable with AFTER using typical targets would surpass that of RHIC by more than 3 orders of magnitude. The f xed-target mode has the advantage to allow for measurements of single-spin asymmetries with polarized target as well as of single-diffractive processes in the target region.


arXiv: High Energy Physics - Experiment | 2012

Prospects for A Fixed-Target ExpeRiment at the LHC: AFTER@LHC

Jean-Philippe Lansberg; Stanley J. Brodsky; C. Lorce; J. P. Didelez; M. Anselmino; E. Scomparin; A. Rakotozafindrabe; P. Rosier; U.I. Uggerhøj; F. Fleuret; I. Schienbein; R. Arnaldi; V. Chambert; E. G. Ferreiro; C. Hadjidakis; B. Genolini

We argue that the concept of a multi-purpose fixed-target experiment with the proton or lead-ion LHC beams extracted by a bent crystal would offer a number of ground-breaking precision-physics opportunities. The multi-TeV LHC beams will allow for the most energetic fixed-target experiments ever performed. The fixed-target mode has the advantage of allowing for high luminosities, spin measurements with a polarised target, and access over the full backward rapidity domain --uncharted until now-- up to x_F ~ -1.


arXiv: High Energy Physics - Experiment | 2012

A Fixed-Target ExpeRiment at the LHC (AFTER@LHC) : Luminosities, Target Polarisation and a Selection of Physics Studies

Jean-Philippe Lansberg; V. Chambert; J. P. Didelez; B. Genolini; C. Hadjidakis; P. Rosier; R. Arnaldi; E. Scomparin; Stanley J. Brodsky; E. G. Ferreiro; F. Fleuret; A. Rakotozafindrabe; U.I. Uggerhøj


arXiv: High Energy Physics - Experiment | 2013

Studying the high x frontier with A Fixed-Target ExpeRiment at the LHC

A. Rakotozafindrabe; M. Anselmino; R. Arnaldi; E. Scomparin; V. Chambert; B. Genolini; C. Hadjidakis; P. Rosier


arXiv:1212.3450 | 2013

Prospectives for a Fixed-Target ExperRment at the LHC: AFTER@LHC

Jean-Philippe Lansberg; V. Chambert; J. P. Didelez; B. Genolini; C. Hadjidakis; C. Lorce; P. Rosier; Orsay; M. Anselmino; R. Arnaldi; Enrico Scomparin; Turin Infn; Stanley J. Brodsky; E. G. Ferreiro; Igfae Santiago de Compostela U.; U Santiago de Compostela; F. Fleuret; A. Rakotozafindrabe; Irfu, SPhN, Saclay; Ingo Schienbein; Grenoble Lpsc; U.I. Uggerhøj; U Aarhus

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B. Genolini

University of Paris-Sud

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C. Hadjidakis

Université Paris-Saclay

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V. Chambert

University of Paris-Sud

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F. Fleuret

Université Paris-Saclay

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R. Arnaldi

Austrian Academy of Sciences

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C. Lorce

University of Paris-Sud

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