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A compact neutrino detector has successfully identified antineutrinos at a nuclear power plant, marking a significant advancement in particle physics. Unlike conventional detectors that require massive infrastructure, this device weighs less than three kilograms. Despite its size, it effectively detected antineutrinos emitted from a nuclear reactor in Leibstadt, Switzerland. The experiment, which lasted 119 days, involved a detector composed of germanium crystals. Around 400 antineutrinos were recorded, aligning with theoretical predictions. Scientists believe this achievement could lead to improved testing of physics theories and potential applications in nuclear monitoring.

Study Findings and Expert Insights

According to a study submitted to arXiv on January 9, the experiment relied on a specific interaction where neutrinos and antineutrinos scatter off atomic nuclear. This phenomenon, which was first observed in 2017, enables smaller detectors to function effectively. Kate Scholberg, a neutrino physicist at Duke University, told Science News that the accomplishment is significant, as researchers have attempted similar feats for decades. She highlighted the simplicity of the interaction, comparing it to a gentle push rather than a complex nuclear reaction.

Christian Buck, a physicist at the Max Planck Institute for Nuclear Physics and co-author of the study, told Science News that this development opens a new avenue in neutrino physics. He noted that the interaction’s clean nature could help identify undiscovered particles or unexpected magnetic properties in neutrinos.

Potential Applications and Challenges

Physicists suggest that such detectors could play a role in monitoring nuclear reactors. The ability to detect antineutrinos could provide insights into reactor activity, including plutonium production, which has implications for nuclear security. However, challenges remain. Jonathan Link, a neutrino physicist at Virginia Tech, told Science News that while the technique is promising, it is still a difficult approach. The detector, despite its small size, requires shielding to eliminate background noise, limiting its portability.

This experiment also helps clarify past findings. In 2022, a similar claim of reactor antineutrinos scattering off nuclei was made, but inconsistencies with established theories led to controversy. Buck stated that the new study rules out the validity of those earlier results. With ongoing research, the field continues to evolve, potentially leading to further discoveries in particle physics.

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Astronomers Propose Rectangular Telescope to Hunt Earth-Like Planets

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Astronomers are exploring a revolutionary space telescope design with a long, narrow primary mirror instead of a traditional circular one. A 20×1 m rectangular mirror concentrates resolution along its length, enabling it to separate Earth-like planets from their stars at ~30 light-years in infrared light. Rotating the telescope 90° captures planets in all orbital or…

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Scientists Discover Hidden Mantle Layer Beneath the Himalayas Challenging Century-Old Theory

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For decades, geologists believed the Himalayas were built on a double layer of continental crust. New research overturns that view, revealing that a dense slab of mantle rock actually wedges between India’s and Asia’s crusts beneath the range. This “mantle sandwich” better explains seismic data and how the mountains remain so stable while rising by about 1 cm …

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Cannibal Solar Storm May Trigger Auroras as Powerful Geomagnetic Storm to Hit Earth Soon

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Between Sept. 1–2, Earth will be struck by a powerful geomagnetic storm caused by a rare “cannibal” solar eruption. The event formed when a fast coronal mass ejection (CME) overtook and consumed an earlier one, creating a stronger, chaotic cloud. As this storm interacts with Earth’s magnetic field, it may produce vivid auroras visible far beyond their usual ra…

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