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Directional Detection of Dark Matter Using Solid-State Quantum Sensing

Next-generation dark matter (DM) detectors searching for weakly interacting massive particles (WIMPs) will be sensitive to coherent scattering from solar neutrinos, demanding an efficient background-signal discrimination tool. Directional detectors improve sensitivity to WIMP DM despite the irreduci...

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Autores principales: Ebadi, Reza, Marshall, Mason C., Phillips, David F., Cremer, Johannes, Zhou, Tao, Titze, Michael, Kehayias, Pauli, Ziabari, Maziar Saleh, Delegan, Nazar, Rajendran, Surjeet, Sushkov, Alexander O., Heremans, F. Joseph, Bielejec, Edward S., Holt, Martin V., Walsworth, Ronald L.
Lenguaje:eng
Publicado: 2022
Materias:
Acceso en línea:https://dx.doi.org/10.1116/5.0117301
http://cds.cern.ch/record/2862200
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author Ebadi, Reza
Marshall, Mason C.
Phillips, David F.
Cremer, Johannes
Zhou, Tao
Titze, Michael
Kehayias, Pauli
Ziabari, Maziar Saleh
Delegan, Nazar
Rajendran, Surjeet
Sushkov, Alexander O.
Heremans, F. Joseph
Bielejec, Edward S.
Holt, Martin V.
Walsworth, Ronald L.
author_facet Ebadi, Reza
Marshall, Mason C.
Phillips, David F.
Cremer, Johannes
Zhou, Tao
Titze, Michael
Kehayias, Pauli
Ziabari, Maziar Saleh
Delegan, Nazar
Rajendran, Surjeet
Sushkov, Alexander O.
Heremans, F. Joseph
Bielejec, Edward S.
Holt, Martin V.
Walsworth, Ronald L.
author_sort Ebadi, Reza
collection CERN
description Next-generation dark matter (DM) detectors searching for weakly interacting massive particles (WIMPs) will be sensitive to coherent scattering from solar neutrinos, demanding an efficient background-signal discrimination tool. Directional detectors improve sensitivity to WIMP DM despite the irreducible neutrino background. Wide-bandgap semiconductors offer a path to directional detection in a high-density target material. A detector of this type operates in a hybrid mode. The WIMP or neutrino-induced nuclear recoil is detected using real-time charge, phonon, or photon collection. The directional signal, however, is imprinted as a durable sub-micron damage track in the lattice structure. This directional signal can be read out by a variety of atomic physics techniques, from point defect quantum sensing to x-ray microscopy. In this white paper, we present the detector principle and review the status of the experimental techniques required for directional readout of nuclear recoil tracks. Specifically, we focus on diamond as a target material; it is both a leading platform for emerging quantum technologies and a promising component of next-generation semiconductor electronics. Based on the development and demonstration of directional readout in diamond over the next decade, a future WIMP detector will leverage or motivate advances in multiple disciplines towards precision dark matter and neutrino physics.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2022
record_format invenio
spelling cern-28622002023-10-03T15:52:12Zdoi:10.1116/5.0117301http://cds.cern.ch/record/2862200engEbadi, RezaMarshall, Mason C.Phillips, David F.Cremer, JohannesZhou, TaoTitze, MichaelKehayias, PauliZiabari, Maziar SalehDelegan, NazarRajendran, SurjeetSushkov, Alexander O.Heremans, F. JosephBielejec, Edward S.Holt, Martin V.Walsworth, Ronald L.Directional Detection of Dark Matter Using Solid-State Quantum Sensinghep-phParticle Physics - Phenomenologyhep-exParticle Physics - Experimentastro-ph.COAstrophysics and Astronomyphysics.ins-detDetectors and Experimental TechniquesNext-generation dark matter (DM) detectors searching for weakly interacting massive particles (WIMPs) will be sensitive to coherent scattering from solar neutrinos, demanding an efficient background-signal discrimination tool. Directional detectors improve sensitivity to WIMP DM despite the irreducible neutrino background. Wide-bandgap semiconductors offer a path to directional detection in a high-density target material. A detector of this type operates in a hybrid mode. The WIMP or neutrino-induced nuclear recoil is detected using real-time charge, phonon, or photon collection. The directional signal, however, is imprinted as a durable sub-micron damage track in the lattice structure. This directional signal can be read out by a variety of atomic physics techniques, from point defect quantum sensing to x-ray microscopy. In this white paper, we present the detector principle and review the status of the experimental techniques required for directional readout of nuclear recoil tracks. Specifically, we focus on diamond as a target material; it is both a leading platform for emerging quantum technologies and a promising component of next-generation semiconductor electronics. Based on the development and demonstration of directional readout in diamond over the next decade, a future WIMP detector will leverage or motivate advances in multiple disciplines towards precision dark matter and neutrino physics.arXiv:2203.06037oai:cds.cern.ch:28622002022-03-11
spellingShingle hep-ph
Particle Physics - Phenomenology
hep-ex
Particle Physics - Experiment
astro-ph.CO
Astrophysics and Astronomy
physics.ins-det
Detectors and Experimental Techniques
Ebadi, Reza
Marshall, Mason C.
Phillips, David F.
Cremer, Johannes
Zhou, Tao
Titze, Michael
Kehayias, Pauli
Ziabari, Maziar Saleh
Delegan, Nazar
Rajendran, Surjeet
Sushkov, Alexander O.
Heremans, F. Joseph
Bielejec, Edward S.
Holt, Martin V.
Walsworth, Ronald L.
Directional Detection of Dark Matter Using Solid-State Quantum Sensing
title Directional Detection of Dark Matter Using Solid-State Quantum Sensing
title_full Directional Detection of Dark Matter Using Solid-State Quantum Sensing
title_fullStr Directional Detection of Dark Matter Using Solid-State Quantum Sensing
title_full_unstemmed Directional Detection of Dark Matter Using Solid-State Quantum Sensing
title_short Directional Detection of Dark Matter Using Solid-State Quantum Sensing
title_sort directional detection of dark matter using solid-state quantum sensing
topic hep-ph
Particle Physics - Phenomenology
hep-ex
Particle Physics - Experiment
astro-ph.CO
Astrophysics and Astronomy
physics.ins-det
Detectors and Experimental Techniques
url https://dx.doi.org/10.1116/5.0117301
http://cds.cern.ch/record/2862200
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