CONUS

(COherent Neutrino-nUcleus Scattering)

Other Web pages: INSPIRE

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References

1 - Habilitation, PhD and Master Theses

[1-1]
Investigating Neutrino Physics within and beyond the Standard Model using CONUS Experimental Data., Thomas Rink, 2022. U. Heidelberg.
[Rink:2022rsx]

2 - Interactions

[2-1]
New constraints on physics within and beyond the standard model from the latest CONUS datasets, N. Ackermann et al. (CONUS), arXiv:2605.22815, 2026.
[CONUS:2026uhz]
[2-2]
First observation of reactor antineutrinos by coherent scattering, N. Ackermann et al., Nature 643 (2025) 1229-1233, arXiv:2501.05206.
[Ackermann:2025obx]
[2-3]
Final CONUS results on coherent elastic neutrino nucleus scattering at the Brokdorf reactor, N. Ackermann et al. (CONUS), Phys.Rev.Lett. 133 (2024) 251802, arXiv:2401.07684.
[CONUSCollaboration:2024kvo]
[2-4]
First limits on neutrino electromagnetic properties from the CONUS experiment, H. Bonet et al. (CONUS), Eur.Phys.J.C 82 (2022) 813, arXiv:2201.12257.
[CONUS:2022qbb]
[2-5]
Novel constraints on neutrino physics beyond the standard model from the CONUS experiment, H. Bonet et al. (CONUS), JHEP 05 (2022) 085, arXiv:2110.02174.
[CONUS:2021dwh]
[2-6]
First constraints on elastic neutrino nucleus scattering in the fully coherent regime from the Conus experiment, H. Bonet et al., Phys.Rev.Lett. 126 (2021) 041804, arXiv:2011.00210.
[CONUS:2020skt]

3 - Detector

[3-1]
Sub-keV energy calibration of CONUS+ via 71Ge M-shell neutron activation, E. Sanchez Garcia et al., arXiv:2604.25748, 2026.
[SanchezGarcia:2026nvr]
[3-2]
Background characterization of the CONUS+ experimental location, E. Sanchez Garcia et al. (CONUS), Eur.Phys.J.C 85 (2025) 465, arXiv:2412.13707.
[CONUS:2024vyx]
[3-3]
The CONUS+ experiment, N. Ackermann et al. (CONUS+), Eur.Phys.J.C 84 (2024) 1265, arXiv:2407.11912.
[CONUS:2024lnu]
[3-4]
Pulse shape discrimination for the CONUS experiment in the keV and sub-keV regime, H. Bonet et al., Eur.Phys.J.C 84 (2024) 139, arXiv:2308.12105.
[Bonet:2023kob]
[3-5]
CONRAD - A low level germanium test detector for the CONUS experiment, Janina Hakenmuller, Gerd Heusser (CONUS), Appl. Radiat. Isot. 194 (2023) 110669.
[Hakenmuller:2023yzb]
[3-6]
Direct measurement of the ionization quenching factor of nuclear recoils in germanium in the keV energy range, A. Bonhomme et al., Eur.Phys.J.C 82 (2022) 815, arXiv:2202.03754.
[Bonhomme:2022lcz]
[3-7]
Full background decomposition of the CONUS experiment, H. Bonet et al., Eur.Phys.J.C 83 (2023) 195, arXiv:2112.09585.
[Bonet:2021wjw]
[3-8]
Large-size sub-keV sensitive germanium detectors for the CONUS experiment, H. Bonet et al., Eur.Phys.J. C81 (2021) 267, arXiv:2010.11241.
[Bonet:2020ntx]
[3-9]
Neutron-induced background in the CONUS experiment, J. Hakenmuller et al. (CONUS), Eur.Phys.J. C79 (2019) 699, arXiv:1903.09269.
[Hakenmuller:2019ecb]

4 - Talks

[4-1]
A novel experiment for coherent elastic neutrino nucleus scattering: CONUS, C. Buck et al., J. Phys. Conf. Ser. 1342 (2020) 012094. 15th International Conference on Topics in Astroparticle and Underground Physics (TAUP 2017): Sudbury, Ontario, Canada, July 24-28, 2017.
[Buck:2020opf]
[4-2]
The Status of CONUS, Werner Maneschg (CONUS), 2018. Neutrino 2018, XXVIII International Conference on Neutrino Physics and Astrophysics, 4-9 June 2018, Heidelberg, Germany, http://doi.org/10.5281/zenodo.1286927. http://doi.org/10.5281/zenodo.1286926.
[Maneschg-Neutrino2018]

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Authors:
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Carlo Giunti / giunti@to.infn.it
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Last Update: Tue 21 Jul 2026, 20:30:05 CET