Electromagnetic form factors of charmed baryons in lattice QCD /

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Bibliographic Details
Author / Creator:Can, Kadir Utku, author.
Imprint:Singapore : Springer, 2018.
Description:1 online resource (xii, 125 pages) : illustrations (some color)
Language:English
Series:Springer theses, 2190-5053
Springer theses,
Subject:
Format: E-Resource Book
URL for this record:http://pi.lib.uchicago.edu/1001/cat/bib/11654216
Hidden Bibliographic Details
ISBN:9789811089954
9811089957
9789811089947
9811089949
Digital file characteristics:text file
PDF
Notes:"Doctoral thesis accpeted by the Tokyo Institute of Technology, Tokyo, Japan."
Includes bibliographical references.
Online resource; title from PDF title page (SpringerLink, viewed April 10, 2018).
Summary:This thesis presents the first lattice quantum chromodynamics (QCD) approach to the charmed baryon regime, building on the knowledge and experience gained with former lattice QCD applications to nucleon structure. The thesis provides valuable insights into the dynamics of yet unobserved charmed baryon systems. Most notably, it confirms that the expectations of model or effective field theoretical calculations of heavy-hadron systems hold qualitatively, while also demonstrating that they conflict with the quantitative results, pointing to a tension between these complementary approaches. Further, the book presents a cutting-edge approach to understanding the structure and dynamics of hadrons made of quarks and gluons using QCD, and successfully extends the approach to charmed hadrons. In particular, the thesis investigate a peculiar property of charmed hadrons whose dynamics, i.e., structure, deviates from their counterparts, e.g., those of protons and neutrons, by employing the lattice QCD approach --a state-of-the-art numerical method and the powerful ab initio, non-perturbative method.
Other form:Print version: Can, Kadir Utku. Electromagnetic form factors of charmed baryons in lattice QCD. Singapore : Springer, 2018 9811089949 9789811089947
Standard no.:10.1007/978-981-10-8995-4