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Two dark matter detector heavyweights join forces to build new observatory | Imperial News


The xenon detector at the core of the LUX-ZEPLIN experiment
Hundreds of global researchers, including from Imperial College London, are planning the most sensitive dark matter detector ever built.
Dark matter makes up 85 percent of the matter in the Universe, but its nature remains a mystery, with several possible candidate particles. In addition, because it is predicted to interact only very weakly with ordinary matter, it has so far not been detected.
If nature has been kind enough to put dark matter within the reach of any direct detection experiment, then this technology is the best shot we have. Professor Henrique Araújo ....

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Rarest Thing Ever Detected --"One Trillion Times Age of the Universe"


 
 
“We actually saw this decay happen. It’s the longest, slowest process that has ever been directly observed, and our dark matter detector was sensitive enough to measure it,” said Ethan Brown, an assistant professor of physics at Rensselaer Polytechnic Institute about a process that takes more than one trillion times longer than the age of the universe. “It’s amazing to have witnessed this process, and it says that our detector can measure the rarest thing ever recorded.”
Detected in the Search for Dark Matter
The XENON Collaboration research team did it with an instrument built to find the most elusive particle in the universe dark matter. In a paper published in the journal Nature, researchers announced that they have observed the radioactive decay of xenon-124, which has a half-life of 1.8 X 10^22 years. ....

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ICARUS gets ready to fly | US Department of Energy Science News


DOE/Fermi National Accelerator Laboratory
The ICARUS detector has been collecting test data in preparation for the official start of the physics data collection later this year. The left panel shows an electron neutrino interaction that produced a proton (top track) and an electron, which produced an electromagnetic shower with photons and electrons (bottom tracks). The right panel shows a muon neutrino interaction that produced a proton (short track, top left) and a muon (3.4-meter-long track); a cosmic-ray track independent of the muon neutrino interaction is also visible in the lower half of the image. In both panels, the neutrino beam came from left. (Image: ICARUS collaboration) ....

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Dark Matter's Last Stand - Scientific American


Scientific American
Neutron Veto: Among the upgrades the XENON experiment will have during its new run is a system to catch free neutrons, which can create signals similar to those caused by dark matter. Neutrons might occasionally be released by the stainless steel in the water tank surrounding the detector or by cosmic rays coming from space, causing a false detection. The octagonal neutron veto cage, studded with the backs of photomultiplier tubes that will detect any neutrons present, sits inside the water tank. Credit: Enrico Sacchetti
Dark Matter’s Last Stand
A new experiment could catch invisible particles that previous detectors have not ....

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