The Asymmetry of Antimatter in the Proton
Abstract
The fundamental building blocks of the proton, quarks and gluons, have been known for decades. However, we still have an incomplete theoretical and experimental understanding of how these particles and their dynamics give rise to the quantum bound state of the proton and its physical properties, such as for example its spin. The two up and the single down quarks that comprise the proton in the simplest picture account only for a few percent of the proton mass, the bulk of which is in the form of quark kinetic and potential energy and gluon energy from the strong force. An essential feature of this force, as described by quantum chromodynamics, is its ability to create matter-antimatter quark pairs inside the proton that exist only for a very short time. Their fleeting existence makes the antimatter quarks within protons difficult to study, but their existence is discernible in reactions where a matter-antimatter quark pair annihilates. In this picture of quark-antiquark creation by the strong force, the probability distributions as a function of momentum for the presence of up and down antimatter quarks should be nearly identical, since their masses are quite similar and small compared to the mass of the proton. In the present manuscript, we show evidence from muon pair production measurements that these distributions are significantly different, with more abundant down antimatter quarks than up antimatter quarks over a wide range of momentum. These results revive interest in several proposed mechanisms as the origin of this antimatter asymmetry in the proton that had been disfavored by the previous results and point to the future measurements that can distinguish between these mechanisms.
Keywords
Cite
@article{arxiv.2103.04024,
title = {The Asymmetry of Antimatter in the Proton},
author = {J. Dove and B. Kerns and R. E. McClellan and S. Miyasaka and D. H. Morton and K. Nagai and S. Prasad and F. Sanftl and M. B. C. Scott and A. S. Tadepalli and C. A. Aidala and J. Arrington and C. Ayuso and C. L. Barker and C. N. Brown and W. C. Chang and A. Chen and D. C. Christian and B. P. Dannowitz and M. Daugherity and M. Diefenthaler and L. El Fassi and D. F. Geesaman and R. Gilman and Y. Goto and L. Guo and R. Guo and T. J. Hague and R. J. Holt and D. Isenhower and E. R. Kinney and N. Kitts and A. Klein and D. W. Kleinjan and Y. Kudo and C. Leung and P. -J. Lin and K. Liu and M. X. Liu and W. Lorenzon and N. C. R. Makins and M. Mesquita de Medeiros and P. L. McGaughey and Y. Miyachi and I. Mooney and K. Nakahara and K. Nakano and S. Nara and J. -C. Peng and A. J. Puckett and B. J. Ramson and P. E. Reimer and J. G. Rubin and S. Sawada and T. Sawada and T. -A. Shibata and D. Su and M. Teo and B. G Tice and R. S. Towell and S. Uemura and S. Watson and S. G. Wang and A. B. Wickes and J. Wu and Z. Xi and Z. Ye},
journal= {arXiv preprint arXiv:2103.04024},
year = {2021}
}
Comments
10 pages, 5 figures, 5 tables; Matches published version