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Joint neutrino oscillation analysis from the T2K and NOvA experiments

  • The NOvA Collaboration
  • , The T2K Collaboration
  • Department of Physics
  • Erciyes University
  • Fermi National Accelerator Laboratory
  • Czech Academy of Sciences
  • Institute for Nuclear Research of the Russian Academy of Sciences
  • University of California at Irvine
  • Wichita State University
  • University of Cincinnati
  • University of Pittsburgh
  • University of Minnesota Twin Cities
  • Tufts University
  • Indiana University Bloomington
  • Syracuse University
  • Iowa State University
  • Queen Mary University of London
  • Ohio State University
  • College of William and Mary
  • University of Houston
  • Illinois Institute of Technology
  • Cochin University of Science and Technology
  • University College London
  • Charles University
  • University of South Carolina
  • National Institute of Science Education and Research
  • Florida State University
  • Czech Technical University in Prague
  • University of Hyderabad
  • Banaras Hindu University
  • University of Delhi

Research output: Contribution to journalArticlepeer-review

13 Scopus citations

Abstract

The landmark discovery that neutrinos have mass and can change type (or flavour) as they propagate—a process called neutrino oscillation1, 2, 3, 4, 5–6—has opened up a rich array of theoretical and experimental questions being actively pursued today. Neutrino oscillation remains the most powerful experimental tool for addressing many of these questions, including whether neutrinos violate charge-parity (CP) symmetry, which has possible connections to the unexplained preponderance of matter over antimatter in the Universe7, 8, 9, 10–11. Oscillation measurements also probe the mass-squared differences between the different neutrino mass states (Δm2), whether there are two light states and a heavier one (normal ordering) or vice versa (inverted ordering), and the structure of neutrino mass and flavour mixing12. Here we carry out the first joint analysis of datasets from NOvA13 and T2K14, the two currently operating long-baseline neutrino oscillation experiments (hundreds of kilometres of neutrino travel distance), taking advantage of our complementary experimental designs and setting new constraints on several neutrino sector parameters. This analysis provides new precision on the Δm322 mass difference, finding 2.43−0.03+0.04×10−3eV2 in the normal ordering and −2.48−0.04+0.03×10−3eV2 in the inverted ordering, as well as a 3σ interval on δCP of [−1.38π, 0.30π] in the normal ordering and [−0.92π, −0.04π] in the inverted ordering. The data show no strong preference for either mass ordering, but notably, if inverted ordering were assumed true within the three-flavour mixing model, then our results would provide evidence of CP symmetry violation in the lepton sector.

Original languageEnglish
Pages (from-to)818-824
Number of pages7
JournalNature
Volume646
Issue number8086
DOIs
StatePublished - Oct 23 2025

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