Abstract

A semi-inclusive measurement of charged hadron multiplicities in deep inelastic muon scattering off an isoscalar target was performed using data collected by the COMPASS Collaboration at CERN. The following kinematic domain is covered by the data: photon virtuality $Q^{2}>1$ (GeV/$c$)$^2$, invariant mass of the hadronic system $W > 5$ GeV/$c^2$, Bjorken scaling variable in the range $0.003 < x < 0.4$, fraction of the virtual photon energy carried by the hadron in the range $0.2 < z < 0.8$, square of the hadron transverse momentum with respect to the virtual photon direction in the range 0.02 (GeV/$c)^2 < P_{\rm{hT}}^{2} < 3$ (GeV/$c$)$^2$. The multiplicities are presented as a function of $P_{\rm{hT}}^{2}$ in three-dimensional bins of $x$, $Q^2$, $z$ and compared to previous semi-inclusive measurements. We explore the small-$P_{\rm{hT}}^{2}$ region, i.e. $P_{\rm{hT}}^{2} < 1$ (GeV/$c$)$^2$, where hadron transverse momenta are expected to arise from non-perturbative effects, and also the domain of larger $P_{\rm{hT}}^{2}$, where contributions from higher-order perturbative QCD are expected to dominate. The multiplicities are fitted using a single-exponential function at small $P_{\rm{hT}}^{2}$ to study the dependence of the average transverse momentum $\langle P_{\rm{hT}}^{2}\rangle$ on $x$, $Q^2$ and $z$. The power-law behaviour of the multiplicities at large $P_{\rm{hT}}^{2}$ is investigated using various functional forms. The fits describe the data reasonably well over the full measured range.

Highlights

  • A complete understanding of the three-dimensional parton structure of a fast moving nucleon requires the knowledge of the intrinsic motion of quarks in the plane transverse to the direction of motion, in both momentum and coordinate space

  • While the spatial distributions of quarks in the transverse plane are described by generalized parton distributions (GPDs), the momentum distributions of quarks in the transverse plane are described by transverse-momentum-dependent (TMD) parton distribution functions (PDFs)

  • The simplest examples are the spin-averaged TMD-PDF fq1ðx; kTÞ and the spin-averaged transverse-momentumdependent fragmentation functions (TMD-FFs) Dhqðz; ph⊥Þ, where x is the Bjorken scaling variable, kT is the quark intrinsic transverse momentum, z is the fractional energy of the final-state hadron, and ph⊥ is the transverse momentum of the final-state hadron relative to the direction of the fragmenting quark

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Summary

INTRODUCTION

A complete understanding of the three-dimensional parton structure of a fast moving nucleon requires the knowledge of the intrinsic motion of quarks in the plane transverse to the direction of motion, in both momentum and coordinate space. Transverse-momentumdependent fragmentation functions (TMD-FFs) are crucial for the description of hard scattering reactions involving hadron production Both PDFs and FFs are nonperturbative quantities that are assumed to be process-independent. Transverse-momentum-dependent distributions of charged hadrons in DIS were first measured by the EMC collaboration [11] at CERN, followed by measurements by ZEUS [12] and H1 [13,14] at HERA These measurements only provided data in a limited dimensional space. The data reported here represent the most precise results on differential charged hadron multiplicities available at this energy scale This measurement is unique as its high statistics allows us to analyze the P2hT dependence of charged-hadron multiplicities in four variables simultaneously.

EXPERIMENTAL SETUP
Multiplicity extraction
Event and hadron selection
Acceptance correction
Diffractive vector meson contribution
Systematic uncertainties
Results
Comparison with other measurements
The range of small PhT
The full measured PhT range
Findings
SUMMARY
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