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Google trend - Neutrino

La Universidad de Granada participa en el estudio que ha ...

Un potente telescopio sumergido en las profundidades del Mediterráneo ha detectado el neutrino de mayor energía nunca antes captado.

Read more at CanalSurWeb


El misterio del superenergético neutrino que sólo se ha 'visto en el ...

Por eso la comunidad física los persigue desde hace décadas, construyendo enormes detectores. Uno de ellos, el KM3Net (con participación española) está en las ...

Read more at Newtral


Neutrino - 10 things to know with detail
  • Neutrinos are subatomic particles that are incredibly small and have no electric charge. They are one of the fundamental particles that make up the universe.
  • Neutrinos are produced in various processes, such as nuclear reactions in stars, radioactive decays, and high-energy particle collisions. They are also produced in large quantities by the sun.
  • Neutrinos come in three different types or "flavors" - electron neutrinos, muon neutrinos, and tau neutrinos. Each flavor is associated with a different type of lepton particle.
  • Neutrinos are extremely difficult to detect because they interact very weakly with matter. They can pass through the Earth and other large objects with little to no interaction.
  • Neutrinos have a very small mass, much lighter than other fundamental particles like electrons or quarks. The exact mass of neutrinos is still not well understood and is an active area of research in particle physics.
  • Neutrinos played a crucial role in the evolution of the universe. Shortly after the Big Bang, neutrinos were created in large quantities and helped shape the distribution of matter in the early universe.
  • Neutrinos have strange properties, such as the ability to oscillate between different flavors as they travel through space. This phenomenon was first observed in experiments studying neutrinos produced by the sun.
  • Neutrinos are used in a variety of scientific research, including studying the interior of stars, detecting nuclear reactors, and probing the nature of dark matter. They are also used in medical imaging and radiation therapy.
  • Neutrinos have been detected from various sources, including the sun, supernovae, and high-energy cosmic rays. Detecting neutrinos from these sources provides valuable insights into astrophysics and particle physics.
  • Neutrinos are a hot topic in modern physics research, with experiments around the world dedicated to studying their properties and behavior. Understanding neutrinos can help scientists unravel some of the mysteries of the universe, such as the nature of dark matter and the origin of cosmic rays.
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