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Baracchiniet al.(PTOLEMY), (2018), arXiv:1808.01892 [physics.ins-det]

4 Pith papers cite this work. Polarity classification is still indexing.

4 Pith papers citing it
abstract

We propose to achieve the proof-of-principle of the PTOLEMY project to directly detect the Cosmic Neutrino Background (CNB). Each of the technological challenges described in [1,2] will be targeted and hopefully solved by the use of the latest experimental developments and profiting from the low background environment provided by the LNGS underground site. The first phase will focus on the graphene technology for a tritium target and the demonstration of TES microcalorimetry with an energy resolution of better than 0.05 eV for low energy electrons. These technologies will be evaluated using the PTOLEMY prototype, proposed for underground installation, using precision HV controls to step down the kinematic energy of endpoint electrons to match the calorimeter dynamic range and rate capabilities. The second phase will produce a novel implementation of the EM filter that is scalable to the full target size and which demonstrates intrinsic triggering capability for selecting endpoint electrons. Concurrent with the CNB program, we plan to exploit and develop the unique properties of graphene to implement an intermediate program for direct directional detection of MeV dark matter [3,4]. This program will evaluate the radio-purity and scalability of the graphene fabrication process with the goal of using recently identified ultra-high radio-purity CO2 sources. The direct detection of the CNB is a snapshot of early universe dynamics recorded by the thermal relic neutrino yield taken at a time that predates the epochs of Big Bang Nucleosynthesis, the Cosmic Microwave Background and the recession of galaxies (Hubble Expansion). Big Bang neutrinos are believed to have a central role in the evolution of the Universe and a direct measurement with PTOLEMY will unequivocally establish the extent to which these predictions match present-day neutrino densities.

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years

2026 3 2025 1

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UNVERDICTED 4

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representative citing papers

Galactic Amnesia: The Information Washout of the Milky Way Merger History

astro-ph.GA · 2026-05-05 · unverdicted · novelty 6.0

Mutual information analysis of TNG50 simulations shows gravitational potential and total energy retain merger mass and infall time information longest, while radial velocity loses it within ~5 Gyr, with washout depending on radius, merger age, and mass.

Type II Seesaw Leptogenesis in a Majoron background

hep-ph · 2025-06-29 · unverdicted · novelty 5.0

Spontaneous wash-in leptogenesis in Type II Seesaw with Majoron pNGB background enables baryon asymmetry generation alongside dark matter cogenesis for specific v_T, v_sigma and m_j ranges.

Gradient-Produced Neutrinos

hep-ph · 2026-04-23 · unverdicted · novelty 5.0

Steep matter-density gradients in neutron stars can produce neutrino-antineutrino pairs analogous to the Schwinger effect.

citing papers explorer

Showing 4 of 4 citing papers.

  • Galactic Amnesia: The Information Washout of the Milky Way Merger History astro-ph.GA · 2026-05-05 · unverdicted · none · ref 273

    Mutual information analysis of TNG50 simulations shows gravitational potential and total energy retain merger mass and infall time information longest, while radial velocity loses it within ~5 Gyr, with washout depending on radius, merger age, and mass.

  • Type II Seesaw Leptogenesis in a Majoron background hep-ph · 2025-06-29 · unverdicted · none · ref 207 · internal anchor

    Spontaneous wash-in leptogenesis in Type II Seesaw with Majoron pNGB background enables baryon asymmetry generation alongside dark matter cogenesis for specific v_T, v_sigma and m_j ranges.

  • Gradient-Produced Neutrinos hep-ph · 2026-04-23 · unverdicted · none · ref 168

    Steep matter-density gradients in neutron stars can produce neutrino-antineutrino pairs analogous to the Schwinger effect.

  • Extracting Dark-Matter Mass from Angular Scanning hep-ph · 2026-04-20 · unverdicted · none · ref 6

    Curvature of the angular spectrum of dark matter events in directional 2D detectors encodes the dark matter mass scale.