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STELLAR CHEMISTRY
Radio waves detect particle showers in a block of plastic
by Staff Writers
Stanford CA (SPX) Feb 27, 2020

After blasting a block of plastic with an electron beam, a team of researchers used an assortment of donated antennas to detect radar echoes from the resulting particle cascades. (Steven Prohira)

When neutrinos crash into water molecules in the billion-plus tons of ice that make up the detector at the IceCube Neutrino Observatory in Antarctica, more than 5,000 sensors detect the light of subatomic particles produced by the collisions. But as one might expect, these grand-scale experiments don't come cheap.

In a paper recently accepted by Physical Review Letters, an international team of physicists working at the Department of Energy's SLAC National Accelerator Laboratory demonstrated an inexpensive way to expand IceCube's neutrino search.

The researchers directed an electron beam diverted from SLAC's Linac Coherent Light Source (LCLS) into a large block of plastic to mimic neutrinos colliding with ice. When a neutrino interacts with ice, it produces a cascade of high-energy particles that leave a trail of ionization in their wake. The same is true for electron collisions in the plastic.

To detect those ionization trails, the team used an antenna to bounce radio waves off them. This created radar echoes that were picked up by additional antennas. It was the first time researchers have been able to detect radar echoes from a particle cascade.

These echoes carry information about neutrinos in an energy range that could bridge the gap between the lower-energy neutrinos that IceCube detects and the higher-energy neutrinos detected by other in-ice and balloon-based detectors.

To follow up, the researchers hope to use a similar set-up to detect neutrinos with a radio echo in Antarctic ice. If successful, the technique could eventually allow researchers to expand the energy reach of IceCube without breaking the bank.


Related Links
SLAC National Accelerator Laboratory
Stellar Chemistry, The Universe And All Within It


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STELLAR CHEMISTRY
Joining forces to solve the neutrino mass puzzle
Mainz, Germany (SPX) Feb 26, 2020
Among the most exciting challenges in modern physics is the identification of the neutrino mass ordering. Physicists from the Cluster of Excellence PRISMA+ at Johannes Gutenberg University Mainz (JGU) play a leading role in a new study that indicates that the puzzle of neutrino mass ordering may finally be solved in the next few years. This will be thanks to the combined performance of two new neutrino experiments that are in the pipeline - the Upgrade of the IceCube experiment at the South Pole a ... read more

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