PaperPanorama

Nuclear Experiment·nucl-ex

Wed·Nov 16, 2022

3 papers0 primary·3 cross-listed·reconstructed*

  1. 01*

    Uncertainty-quantified phenomenological optical potentials for single-nucleon scattering

    C. D. Pruitt🇺🇸 · J. E. Escher🇺🇸 · R. Rahman🇪🇬

    Optical-model potentials (OMPs) continue to play a key role in nuclear reaction calculations. However, the uncertainty of phenomenological OMPs in widespread use -- inherent to any parametric model trained on data -- has not been fully characterized, and its impact on downstream users of OMPs remains unclear. Here we assign well-calibrated uncertainties for two representative global OMPs, those of Koning-Delaroche and Chapel Hill '89, using Markov-Chain Monte Carlo for parameter inference. By comparing the canonical versions of these OMPs against the experimental data originally used to constrain them, we show how a lack of outlier rejection and a systematic underestimation of experimental uncertainties contributes to bias of, and overconfidence in, best-fit parameter values. Our updated, uncertainty-quantified versions of these OMPs address these issues and yield complete covariance information for potential parameters. Scattering predictions generated from our ensembles show improved performance both against the original training corpora of experimental data and against a new "test" corpus comprising many of the experimental single-nucleon scattering data collected over the last twenty years. Finally, we apply our uncertainty-quantified OMPs to two case studies of application-relevant cross sections. We conclude that, for many common applications of OMPs, including OMP uncertainty should become standard practice. To facilitate their immediate use, digital versions of our updated OMPs and related tools for forward uncertainty propagation are included as Supplementary Material.

    nucl-thnucl-exPRC(2023)·47 citations
  2. 02*

    Emergence of Hadron Mass and Structure

    Minghui Ding🇩🇪 · Craig D. Roberts🇨🇳 · Sebastian M. Schmidt🇩🇪

    Visible matter is characterised by a single mass scale; namely, the proton mass. The proton's existence and structure are supposed to be described by quantum chromodynamics (QCD); yet, absent Higgs boson couplings, chromodynamics is scale invariant. Thus, if the Standard Model is truly a part of the theory of Nature, then the proton mass is an emergent feature of QCD; and emergent hadron mass (EHM) must provide the basic link between theory and observation. Nonperturbative tools are necessary if such connections are to be made; and in this context, we sketch recent progress in the application of continuum Schwinger function methods to an array of related problems in hadron and particle physics. Special emphasis is given to the three pillars of EHM -- namely, the running gluon mass, process-independent effective charge, and running quark mass; their role in stabilising QCD; and their measurable expressions in a diverse array of observables.

    hep-phhep-exhep-latnucl-ex+1Particles(2023)·117 citations
  3. 03*

    Transverse momentum dependent distribution functions in the threshold limit

    Zhong-Bo Kang🇺🇸 · Kajal Samanta🇺🇸 · Ding Yu Shao🇨🇳 · Yang-Li Zeng🇨🇳

    We apply the joint threshold and transverse momentum dependent (TMD) factorization theorem to introduce new threshold-TMD distribution functions, including threshold-TMD parton distribution functions (PDFs) and fragmentation functions (FFs). We apply Soft-Collinear Effective Theory and renormalization group methods to carry out QCD evolution for both threshold-TMD PDFs and FFs. We show the universality of threshold-TMD functions among three standard processes, i.e. the Drell-Yan production in collisions, semi-inclusive deep-inelastic scattering and back-to-back two hadron production in collisions. In the end, we present the numerical predictions for different threshold-TMD functions and also transverse momentum distributions at , , and collisions.

    hep-phhep-exnucl-exnucl-thJHEP(2023)·4 citations

* Reconstructed cohort: no mailing for this day survives in the archive. Papers are grouped by their submission times and arXiv's announcement cut-off, assuming announcement without delay; positions follow identifier order. Validated at ~91% exact-day agreement against the archived era.