Cooper-Sarkar is an expert on the deep structure of the nucleon. Her work focuses on how the constituents of protons and neutrons,
quarks and
gluons, collectively known as
partons, are distributed in momentum and how these distributions evolve according to the predictions of
QCD.
Deep inelastic scattering (DIS) experiments probe these distributions, known as
parton distribution functions (PDFs), and form the basis for understanding hadronic cross-sections and testing the Standard Model at modern colliders.
Neutrino scattering experiments During her time at RAL and CERN, Cooper-Sarkar led studies of neutrino and
antineutrino interactions with nuclear targets in the BEBC experiments WA25, WA59, and WA66. Her analyses provided early insight into the so-called "
EMC effect," an anomaly in parton distributions in nuclear environments that revealed the influence of nuclear matter on quark behaviour. She led early searches for physics beyond the
Standard Model (BSM) in neutrino data, ruling out a light supersymmetric gluino and setting limits on heavy neutral lepton mixing with light neutrinos, a constraint that remains relevant today.
HERA and ZEUS experiments In 1987, Cooper-Sarkar joined the ZEUS experiment at the electron–proton collider
HERA in Hamburg to extend DIS studies to a new kinematic regime. She led the first studies exploring the longitudinal structure function at very small momentum fractions (
x), which enabled the extraction of the gluon momentum distribution in the proton. Early ZEUS data confirmed that the proton structure function
F2 rises steeply with decreasing
x, a key, although largely unexpected, experimental validation of perturbative QCD, which hints at the need to consider non-linear parton interactions, beyond the conventional DGLAP formalism for perturbative QCD calculations. This is an area which is still at the research forefront. Her analyses through the 1990s established the quantitative behaviour of gluon and
sea-quark distributions and guided theoretical developments on the low-
x and low-
Q2 limits of QCD. She co-authored a comprehensive review, "Structure Functions of the Nucleon and Their Interpretation" (1998), and later co-wrote the textbook
Deep Inelastic Scattering (Oxford University Press, 2004) with
Robin Devenish.
QCD analysis and global fits As leader of the ZEUS QCD fitting group from 2000, Cooper-Sarkar produced global PDF fits that accounted for correlated experimental uncertainties. These analyses, particularly the ZEUS-JETS fits, provided the first direct constraints on the gluon density from jet data and enabled a precision determination of the strong coupling constant, αs(M_Z). She subsequently led the joint H1–ZEUS QCD fitting group (2007–2022), combining data from both HERA experiments to produce a unified and statistically consistent dataset. The HERAPDF2.0 PDF set which resulted from this work remains a valuable reference. The resulting combined HERA data remain foundational in modern collider physics, providing the baseline for all current global PDF determinations.
Work with ATLAS and PDF4LHC With the end of the HERA programme, Cooper-Sarkar joined the
ATLAS experiment at the LHC in 2004, serving as ATLAS-UK Standard Model Convenor from 2005 to 2008. She emphasized the role of precise PDFs in interpreting LHC cross-sections and co-founded the PDF4LHC working group in 2007. This group provides recommendations for the use of PDFs by collider collaborations, as well as the PDF4LHC PDF sets, which are a statistical combination of the PDFs produced by the global PDF fitting groups CT, MSHT and NNPDF. Cooper-Sarkar became the chairperson of the PDF4LHC in 2022. Her contributions to ATLAS include the development of the APPLgrid project for fast QCD calculations and the creation of the open-source HERAFitter (now xFitter) framework for global PDF fitting. She co-founded and led the ATLAS PDF Forum as its convenor 2012/3 and again in 2016/2018. She led studies of W+, W- and Z production that revealed an unexpectedly unsuppressed strange-quark distribution at low x. These ATLAS data have improved precision in PDF determinations of all groups. Cooper-Sarkar also led the most recent ATLAS PDF analysis ATLASpdf21, in which systematic correlations between differing classes of ATLAS data were assessed and their impact on percent level accuracy of PDFs was evaluated. Cooper-Sarkar's work also extended to modelling ultra-high-energy neutrino cross-sections, adopted as benchmarks by the
IceCube Neutrino Observatory. == Recent work ==