Origins of Mass
arXiv:1206.7114 · doi:10.2478/s11534-012-0121-0
Abstract
Newtonian mechanics posited mass as a primary quality of matter, incapable of further elucidation. We now see Newtonian mass as an emergent property. Most of the mass of standard matter, by far, arises dynamically, from back-reaction of the color gluon fields of quantum chromodynamics (QCD). The equations for massless particles support extra symmetries - specifically scale, chiral, and gauge symmetries. The consistency of the standard model relies on a high degree of underlying gauge and chiral symmetry, so the observed non-zero masses of many elementary particles ( and bosons, quarks, and leptons) requires spontaneous symmetry breaking. Superconductivity is a prototype for spontaneous symmetry breaking and for mass-generation, since photons acquire mass inside superconductors. A conceptually similar but more intricate form of all-pervasive (i.e. cosmic) superconductivity, in the context of the electroweak standard model, gives us a successful, economical account of and boson masses. It also allows a phenomenologically successful, though profligate, accommodation of quark and lepton masses. The new cosmic superconductivity, when implemented in a straightforward, minimal way, suggests the existence of a remarkable new particle, the so-called Higgs particle. The mass of the Higgs particle itself is not explained in the theory, but appears as a free parameter. Earlier results suggested, and recent observations at the Large Hadron Collider (LHC) may indicate, the actual existence of the Higgs particle, with mass GeV. In addition to consolidating our understanding of the origin of mass, a Higgs particle with GeV could provide an important clue to the future, as it is consistent with expectations from supersymmetry.
Invited review for the Central European Journal of Physics. This is the supplement to my 2011 Solvay Conference talk promised there. It is adapted from an invited talk given at the Atlanta APS meeting, April 2012. 33 pages, 6 figures. v2: Added update section bringing in the CERN discovery announcement
References in corpus (3)
Cited by in corpus (17)
- Flavor structures of charged fermions and massive neutrinos
- The BCS-BEC crossover: From ultra-cold Fermi gases to nuclear systems
- New insights into the nucleon's electromagnetic structure
- Nucleon mass radii and distribution: Holographic QCD, Lattice QCD and GlueX data
- From the origin of life to pandemics: Emergent phenomena in complex systems
- Origin of fermion masses without spontaneous symmetry breaking
- Recent developments in SU(3) covariant baryon chiral perturbation theory
- Electromagnetic form factors of the nucleon from lattice QCD
- The masses of hadrons in the chiral symmetry restored vacuum
- Vector meson mass in the chiral symmetry restored vacuum
- meson properties in nuclear matter from QCD sum rules with chirally separated four-quark condensates
- Model-independent access to the structure of quark flavor mixing
- Deciphering Twist-3 Chiral-Even GPDs in the Light-Front Quark-Diquark Model
- Einstein's Geometrical Versus Feynman's Quantum-Field Approaches to Gravity Physics: Testing by Modern Multimessenger Astronomy
- Electron EM-mass melting in strong fields
- What are Elementary Particles? From Dark Energy to Quantum Field Excitations
- Studying Quantum Field Theory