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The Physical Vacuum: Where Particle Physics Meets Cosmology
The Physical Vacuum: Where Particle Physics Meets Cosmology

... • EW symmetry breaking and mass splitting problem (Higgs condensate substructure) • Origin of quark mixing parameters, e.g. no hypernuclei (unknown vacuum?) • Quark-lepton symmetry and generations problem (unknown vacuum?) ...
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... I will begin with a short story about my background. I studied physics at the University of Tokyo. I was attracted to particle physics because of three famous names, Nishina, Tomonaga and Yukawa, who were the founders of particle physics in Japan. But these people were at different institutions than ...
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The Standard Model and its Simple Extensions
The Standard Model and its Simple Extensions

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... Nucleons contain both quarks and glue particles (gluons) both described by individual characteristic momentum distributions (Parton Distribution Functions) Monday, Nov. 27, 2006 ...
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... • E.G. MSSM: In general, the MSSM contains many new parameters, including multiple new CP-violating phases, e.g. ...
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... http://space.mit.edu/home/tegmark/cmb/movies.html ...
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DOC - UF Physics - University of Florida

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SUPERSYMETRY FOR ASTROPHYSICISTS

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PARTICLE PHYSICS BEYOND THE STANDARD MODEL

... a perturbative field theory approach to particle physics, opening the door for controlled extrapolations from the LHC energy to higher, more fundamental energy scales. The structural success of our approach to particle physics and cosmology, on the other hand, still leaves many questions open. The m ...
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DUAL NATURE OF DARK MATTER: COMPOSITE OF BOTH

... mechanism, neutrinos do not have mass. But, about 15 years ago, experimenters discovered that neutrinos do have tiny masses and this has been hailed as a great discovery since this may show us how to go beyond the SM. Many researchers have proposed that these neutrinos might be the major constituent ...
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... Despite the absence of any convincing signal of supersummetry (SUSY) after Run 1 at the large hadron collider (LHC), SUSY remains well motivated. First of all, the lightest neutralino is a natural DM candidate. Secondly, SUSY provides a solution to the hierarchy problem. Finally, SUSY allows for uni ...
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Diapositive 1 - indico in2p3
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Search for the Higgs boson

The search for the Higgs boson was a 40-year effort by physicists to prove the existence or non-existence of the Higgs boson, first theorised in the 1960s. The Higgs boson is the last unobserved fundamental particle in the Standard Model of particle physics, and its discovery would be the ""ultimate verification"" of the Standard Model. In March 2013, the Higgs Boson was officially confirmed to exist.A confirmed answer would additionally prove or disprove the existence of the hypothetical Higgs field—a field of immense significance that is hypothesised as the source of electroweak symmetry breaking and the means by which elementary particles acquire mass. Symmetry breaking is considered proven but confirming exactly how this occurs in nature is a major unanswered question in physics. Proof of the Higgs field (by observing the associated particle), and evidence of its properties, is likely to greatly affect human understanding of the universe, validate the final unconfirmed part of the Standard Model as essentially correct, indicate which of several current particle physics theories are more likely correct, and open up ""new"" physics beyond current theories. If the Higgs boson were shown not to exist, other alternative sources for the Higgs mechanism would need to be considered and the same experimental equipment would be used for that purpose.Despite their importance, the search and any proof have been extremely difficult and taken decades, because direct production, detection and verification of the Higgs boson on the scale needed to confirm the discovery and learn its properties requires a very large experimental project and huge computing resources. For this reason, most experiments until around 2011 aimed to exclude ranges of masses that the Higgs could not have. Ultimately the search led to the construction of the Large Hadron Collider (LHC) in Geneva, Switzerland, the largest particle accelerator in the world, designed especially for this and other high-energy tests of the Standard Model.Experiments showed tentative positive signs were found at the end of 2011, and on 4 July 2012 CERN announced that two different experimental teams (the CMS and the ATLAS teams), working in isolation from each other, independently announced they had each confirmed the same result–a previously unknown boson of mass between 125 and 7002127000000000000♠127 GeV/c2 was proven to exist with a likelihood of error under one in a million in each experiment. The newly discovered particle's behaviour has so far been ""consistent with"" that of the theorized Higgs boson; however, as of August 2012 it has yet to be confirmed as a Higgs boson, nor are its properties fully known.
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