Liquid Argon Time Projection Chamber (LArTPC) is a cutting-edge detector technology that provides unprecedented spatial and calorimetric resolution while remaining scalable to tens of kilotons of active mass. By using this technology, we can study neutrino interactions in exquisite detail, offering a path toward addressing fundamental questions in physics—including the neutrino mass ordering, CP violation in leptonic mixing, the mechanics of core-collapse supernovae, and baryon number violation.
Our group is leading detector control system, TPC calibration, and neutrino/hadron-argon interaction studies.
Link to the official webpage: [here]
The Short-Baseline Near Detector (SBND) is a near detector for the Short-Baseline Neutrino (SBN) program at Fermi National Accelerator Laboratory in the United States. The SBN program aims to search for sterile neutrinos with eV-scale masses, perform precise neutrino interaction studies, and explore physics beyond the Standard Model.
Our group is an active member of the SBND collaboration. On the physics front, we lead neutrino interaction studies, working toward the world's most precise measurements. Regarding technical contributions, we lead efforts in the detector control system, TPC calibration, and particle reconstruction and identification to maximize the potential of LArTPC detector technology.
Link to the official webpage: [here]
The Deep Underground Neutrino Experiment (DUNE) is the flagship next-generation high-energy physics experiment in the United States, comprising an international collaboration of over 1,400 members. The experiment has a broad physics program aimed at resolving fundamental mysteries of the universe, including CP violation in the lepton sector, the neutrino mass ordering problem, searches for physics beyond the Standard Model, core-collapse supernova mechanisms, solar hep neutrino fluxes, and baryon number violation.
This physics capability is driven by large-volume (10-kton scale) LArTPCs, a neutrino beam produced by a world-class 1.2 MW proton beam, and a near detector facility consisting of movable LArTPC and on-axis components.
Our group's long-term vision is to lead the discovery of CP-violation in the lepton sector within the DUNE collaboration. To achieve this, we aim to constrain systematic uncertainties arising from neutrino interaction modeling, beam fluxes, and detector effects driven by hadron-argon interaction properties. As a near-term goal, our group will officially join the DUNE collaboration in the fall of 2026.