August 31, 2026 to September 5, 2026
Tsung-Dao Lee Institute
Asia/Shanghai timezone

Session

WG2 — Collider & High-Energy Neutrinos

Sep 4, 2026, 2:00 PM
Tsung-Dao Lee Institute

Tsung-Dao Lee Institute

No.1 Lisuo Road, Pudong New District, Shanghai, 201210, China

Conveners

WG2 — Collider & High-Energy Neutrinos

  • Pilar Casado

Presentation materials

There are no materials yet.

  1. Umut Kose (ETH Zurich)
    9/4/26, 2:00 PM
    WG2: Neutrino Scattering Physics
    Oral contribution

    The FASER experiment is located 480 m downstream of the ATLAS interaction point at the Large Hadron Collider (LHC), aligned with the beam collision axis. Shielded by approximately 100 meters of rock and concrete, FASER operates in an exceptionally low-background environment that enables unique studies of forward physics. TThe experiment's goals include two complementary physics programs:...

    Go to contribution page
  2. Wissal Filali (University of Bonn)
    9/4/26, 2:25 PM
    WG2: Neutrino Scattering Physics

    The Forward Search Experiment (FASER) at the CERN Large Hadron Collider (LHC) provides access to TeV-scale neutrinos produced in the far-forward region of proton-proton collisions. Using the electronic detector components of FASER and an integrated luminosity of $186 \pm 4~\mathrm{fb}^{-1}$ collected during LHC Run 3 at $\sqrt{s}=13.6~\mathrm{TeV}$, charged-current muon neutrino interactions...

    Go to contribution page
  3. Nayana Bangaru
    9/4/26, 2:50 PM
    WG2: Neutrino Scattering Physics

    The SND@LHC detector is a compact, stand-alone experiment designed to measure neutrinos produced at the LHC in a previously unexplored region of pseudorapidity, specifically between 7.2 and 8.6. This region complements those covered by other LHC experiments. The detector is situated 480 meters downstream from IP1 in the unused TI18 tunnel. It is composed of a hybrid system based on an 800 kg...

    Go to contribution page
  4. Mahesh Jakkapu (Ruđer Bošković Institute, Zagreb, Croatia)
    9/4/26, 3:15 PM
    WG2: Neutrino Scattering Physics
    Oral contribution

    The NINJA experiment in the T2K beam employs nuclear emulsion detectors to study neutrino interactions. A key advantage of nuclear emulsion technology is its extremely high spatial granularity allowing for sub-micron spatial resolution. This feature enables the reconstruction of short particle tracks originating in the vicinity of the neutrino interaction vertex, allowing for detailed...

    Go to contribution page
Building timetable...