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Saturday, August 14, 2010

E.C.G. Sudarshan shares Dirac Medal with Italian

The Hindu : Front Page : E.C.G. Sudarshan shares Dirac Medal with Italian: "Ennackal Chandy George Sudarshan, 78, shares the Dirac 2010 with Italian physicist Nicola Cabibbo.
Professor Sudarshan's contributions to theoretical physics include the discovery of the V-A theory of weak interactions, which opened the way for full description of the unified electroweak theory.
The Dirac Medal of ICTP is awarded by the Abdus Salam International Centre for Theoretical Physics (ICTP) on renowned physicist P.A.M Dirac's birthday — August 8. It was first awarded in 1985. The winners also receive a prize of $5,000"

Thursday, June 24, 2010

Neutrino Search

A hard-to-observe fundamental particle that travels alone, the neutrino has little or no mass, so rarely interacts with other particles.
Neutrinos are ubiquitous throughout our universe. They were produced during the Big Bang, and many of those are still around. New ones are constantly being created too, through natural occurrences like solar fusion in the sun's core, or radioactive elements decaying in the Earth's mantle, as well as when the particle accelerator at Fermilab purposely smashes protons into carbon foils.
Our sun produces so many that hundreds of billions are zinging through our bodies every second, Coan said. It's hoped the new detector can resolve questions surrounding three different kinds of neutrinos — electron, tau and muon — and their "oscillation" from one type to another as they travel, he said.
Scientists at the new detectors will analyze data from Fermilab's neutrino beam to observe evidence of neutrinos when the speedy, lightweight particles occasionally smash into the carbon nuclei in the scintillating oil of the detector, causing a burst of light flashes, Coan said.
NOvA is looking for the most elusive oscillation of the muon type of neutrino to the electron type, Cooper said.
More information: http://www-nova.fnal.gov/

Neutrino search

A hard-to-observe fundamental particle that travels alone, the neutrino has little or no mass, so rarely interacts with other particles.
Neutrinos are ubiquitous throughout our universe. They were produced during the Big Bang, and many of those are still around. New ones are constantly being created too, through natural occurrences like solar fusion in the sun's core, or radioactive elements decaying in the Earth's mantle, as well as when the particle accelerator at Fermilab purposely smashes protons into carbon foils.
Our sun produces so many that hundreds of billions are zinging through our bodies every second, Coan said. It's hoped the new detector can resolve questions surrounding three different kinds of neutrinos — electron, tau and muon — and their "oscillation" from one type to another as they travel, he said.
Scientists at the new detectors will analyze data from Fermilab's neutrino beam to observe evidence of neutrinos when the speedy, lightweight particles occasionally smash into the carbon nuclei in the scintillating oil of the detector, causing a burst of light flashes, Coan said.
NOvA is looking for the most elusive oscillation of the muon type of neutrino to the electron type, Cooper said.
More information: http://www-nova.fnal.gov/

in reference to: Neutrino data to flow in 2010; NOvA scientists tune design (view on Google Sidewiki)