Ab initio calculation of the neutron-proton mass difference
Abstract
The existence and stability of atoms rely on the fact that neutrons are more massive than protons. The measured mass difference is only 0.14% of the average of the two masses. A slightly smaller or larger value would have led to a dramatically different universe. Here, we show that this difference results from the competition between electromagnetic and mass isospin breaking effects. We performed lattice quantum-chromodynamics and quantum-electrodynamics computations with four nondegenerate Wilson fermion flavors and computed the neutron-proton mass-splitting with an accuracy of 300 kilo-electron volts, which is greater than 0 by 5 standard deviations. We also determine the splittings in the Σ, Ξ, D, and Ξcc isospin multiplets, exceeding in some cases the precision of experimental measurements.
- Publication:
-
Science
- Pub Date:
- March 2015
- DOI:
- 10.1126/science.1257050
- arXiv:
- arXiv:1406.4088
- Bibcode:
- 2015Sci...347.1452B
- Keywords:
-
- PHYSICS;
- High Energy Physics - Lattice;
- High Energy Physics - Phenomenology;
- Nuclear Theory
- E-Print:
- 57 pages, 15 figures, 6 tables, revised version