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WIMP detection and slow ion dynamics in carbon nanotube arrays

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arxiv 1602.03216 v2 pith:4HLJKRLH submitted 2016-02-09 physics.ins-det astro-ph.IMhep-ph

classification physics.ins-detastro-ph.IMhep-ph
keywords carbonarraysdetectionwimpcntsenergylargemomentum
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Large arrays of aligned carbon nanotubes (CNTs), open at one end, could be used as target material for the directional detection of weakly interacting dark matter particles (WIMPs). As a result of a WIMP elastic scattering on a CNT, a carbon ion might be injected in the body of the array and propagate through multiple collisions within the lattice. The ion may eventually emerge from the surface with open end CNTs, provided that its longitudinal momentum is large enough to compensate energy losses and its transverse momentum approaches the channeling conditions in a single CNT. Therefore, the angle formed between the WIMP wind apparent orientation and the direction of parallel carbon nanotube axes must be properly chosen. We focus on very low ion recoil kinetic energies, related to low mass WIMPs (~ 10 GeV) where most of the existing experiments have low sensitivity. Relying on some exact results on two-dimensional lattices of circular obstacles, we study the low energy ion motion in the transverse plane with respect to CNT directions. New constraints are obtained on how to devise the CNT arrays to maximize the detection efficiency.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Hydrogenated carbon structures as directional sub-GeV dark matter detectors

    hep-ph 2026-02 conditional novelty 7.0 of 10

    Hydrogenated carbon sheets and nanotube arrays could detect dark matter as light as ~1 MeV by counting protons knocked loose from hydrogen atoms.

  2. On the relation between Migdal effect and dark matter-electron scattering in isolated atoms and semiconductors

    hep-ph 2019-08 conditional novelty 6.0 of 10

    The Migdal ionization rate from dark matter-nucleus scattering equals the dark matter-electron ionization form factor evaluated at momentum q_e = (m_e/m_N) q, enabling the first semiconductor Migdal estimate and new s...

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