Super-Kamiokande is a neutrino observatory located under Mount Ikeno near the city of Hida, Gifu Prefecture, Japan. It is operated by the Institute for Cosmic Ray Research(ICRR) of University of Tokyo, with the help of an international team. It is located 1,000 m (3,300 ft) underground in the Mozumi Mine in Hida's Kamioka area. The observatory was designed to detect high-energy neutrinos, to search for proton decay, study solar and atmospheric neutrinos, and keep watch for supernovae in the Milky Way galaxy.
Hyper-Kamiokande is a neutrino observatory and experiment under construction in Hida, Gifu Prefecture and in Tokai, Ibaraki Prefecture in Japan. It is conducted by the University of Tokyo and the High Energy Accelerator Research Organization (KEK), in collaboration with institutes from over 20 countries across six continents. As a successor of the Super-Kamiokande (also Super-K or SK) and T2K experiments, it is designed to search for proton decay and detect neutrinos from natural sources such as the Earth, the atmosphere, the Sun and the cosmos, as well as to study neutrino oscillations of the man-made accelerator neutrino beam. The beginning of data-taking is planned for 2028.
The Reactor Experiment for Neutrino Oscillation (RENO) is a short baseline reactor neutrino oscillation experiment in South Korea. The experiment was designed to either measure or set a limit on the neutrino mixing matrix parameter θ13, a parameter responsible for oscillations of electron neutrinos into other neutrino flavours. RENO has two identical detectors, placed at distances of 294 m and 1383 m, that observe electron antineutrinos produced by six reactors at the Hanbit Nuclear Power Plant (the old name: the Yeonggwang Nuclear Power Plant) in Korea.
The RENE (Reactor Experiment for Neutrinos and Exotics) is a cutting-edge particle physics project located right here in South Korea, designed to search for the elusive "sterile neutrino". Located in the tendon gallery of a reactor at the Hanbit Nuclear Power Plant in Yeonggwang, Jeollanam-do, RENE aims to resolve the mysterious "Reactor Antineutrino Anomaly". Scientists are using a specialized detector built with a gadolinium-loaded liquid scintillator and an upgraded γ-catcher layer to precisely measure antineutrinos produced by the plant's reactors. This data will help physicists explore oscillation parameters around Δ m² ~ 2 eV².