Talks and presentations

Parameterization of Chiral Even Quark and Gluon Generalized Parton Distributions

November 18, 2021

Talk, APS SESAPS 2021, Florida State University

We present a parametrization of the chiral even generalized parton distributions, H, E, H˜, E˜, for the quark, antiquark and gluon, in the perturbative QCD-parton framework. Parametric analytic forms are given as a function of two equivalent sets of variables x,ξ,t (symmetric frame) and X,ζ,t (asymmetric frame), at an initial scale, Q2o. In the X>ζ region a convenient and flexible form is obtained as the product of a Regge term ∝X−α+α′t, describing the low X behavior, times a spectator model-based functional form depending on various mass parameters; the behavior at X<ζ, is determined using the generalized parton distributions symmetry and polynomiality properties. The parameters are constrained using data on the flavor separated nucleon electromagnetic elastic form factors, the axial and pseudoscalar nucleon form factors, and the parton distribution functions from both the deep inelastic unpolarized and polarized nucleon structure functions. For the gluon distributions we use, in particular, constraints provided by recent lattice QCD moments calculations. The parametrization’s kinematical range of validity is: 0.0001≤X≤0.85, 0.01≤ζ≤0.85, 0≤−t≤1 GeV2, 2≤Q2≤100 GeV2. With the simultaneous description of the quark, anti-quark and gluon sectors, this parametrization represents a first tool enabling a global QCD analysis of deeply virtual exclusive experiments.

Optimized Extraction of Generalized Parton Distributions from Deeply Virtual Compton Scattering

October 11, 2021

Talk, APS DNP 2021, Online

Generalized Parton Distributions (GPDs) are a powerful tool that allows greater insight into the internal structure of the nucleon. GPDs define the matrix elements for the deeply virtual Compton scattering (DVCS) process. I will first present a spectator model calculation for the quark, anti-quark and gluon chiral even GPDs H,E,H˜,E˜ in terms of the kinematic variables X, ζ, and t. The model implements the polynomiality and positivity constraints, and it is evolved in perturbative QCD up to next to leading order. I will then illustrate the implementation of computer tensor algebra methods to construct algorithms to optimize the analysis for DVCS, Bethe Heitler, and interference cross-section terms for various beam and target polarization.

Imaging the Nuclear Glue and Sea

October 29, 2020

Talk, APS DNP 2020, Online

Imaging the 3D structure of the nucleon is a fundamental goal of every major nuclear physics program. With the rapid development of deeply virtual Compton scattering experiments spanning unprecedented kinematic regimes, there is a need for flexible models of generalized parton distribution functions (GPDs) to place constraints on experimental observables. The proposed low-x electron-ion collider (EIC) kinematic settings are dominated by gluon dynamics; therefore, modelling sea quark and gluon GPDs is crucial. We are developing flexible GPD models of the nucleon glue and sea using a spectator diquark model where we fit the momentum transfer dependence to lattice QCD calculations of the gravitational form factors. Through Fourier transform of the momentum transfer variable t, we can develop femtographic images of the transverse spatial dependence of the glue and sea in the nucleon as it would appear at an EIC.

A Flexible Parametrization to Compute Chiral-Even Generalized Parton Distributions

November 08, 2019

Poster, Sigma Pi Sigma Research Symposium, University of Virginia, Physics Department, Charlottesville, Virginia

Imaging the 3D structure of the nucleon is a fundamental goal of every major nuclear physics program. With the rapid development of deeply virtual Compton scattering experiments spanning unprecedented kinematic regimes, there is a need for flexible models of generalized parton distribution functions (GPDs) to place constraints on experimental observables. The proposed low-x electron-ion collider (EIC) kinematic settings are dominated by gluon dynamics; therefore, modelling sea quark and gluon GPDs is crucial. We are developing flexible GPD models of the nucleon glue and sea using a spectator diquark model where we fit the momentum transfer dependence to lattice QCD calculations of the gravitational form factors. Through Fourier transform of the momentum transfer variable t, we can develop femtographic images of the transverse spatial dependence of the glue and sea in the nucleon as it would appear at an EIC.