MARLEY Bibliography

This bibliography attempts to collect a full list of publications in three categories:

  1. References discussing MARLEY itself

  2. Publications that directly use MARLEY in some way, e.g., experimental sensitivity studies based upon MARLEY simulations

  3. Publications that refer to MARLEY predictions without running the code directly

User contributions to this list are strongly encouraged. If you have written a publication, thesis, etc. in which MARLEY is used, please send me a citation (BibTeX format preferred) to advertise on this page.

About MARLEY

[1]

S. Gardiner, P. Barham Alzás, A. Nikolakopoulos et al., Continuum contribution to charged-current absorption of low-energy νe\nu_e on 40^{40}Ar, (2026), arXiv:2604.26801 [hep-ph].

[2]

S. Gardiner, Nuclear de-excitations in low-energy charged-current νe\nu_e scattering on 40^{40}Ar, Phys. Rev. C 103, 044604 (2021), arXiv:2010.02393 [nucl-th].

[3]

S. Gardiner, Simulating low-energy neutrino interactions with MARLEY, Comput. Phys. Commun. 269, 108123 (2021), arXiv:2101.11867 [nucl-th].

[4]

S. J. Gardiner, Nuclear Effects in Neutrino Detection, (PhD thesis, UC, Davis, 2018).

Applications of the MARLEY code

[B1]

J. Folkerts, N. Solomey, B. Hartsock et al., Method to reduce noise for measurement of 7^{7}Be and 8^{8}B solar neutrinos on gallium-71, Nucl. Instrum. Meth. A 1072, 170116 (2025), arXiv:2312.10157 [hep-ex].

[B2]

S. Manthey Corchado (DUNE Collaboration), DUNE's low energy physics searches, PoS ICHEP2024, 217 (2025), arXiv:2410.08251 [hep-ex].

[B3]

A. Abed Abud et al. (DUNE Collaboration), Supernova pointing capabilities of DUNE, Phys. Rev. D 111, 092006 (2025), arXiv:2407.10339 [hep-ex].

[B4]

W. Shi, X. Ning, D. Pershey et al., Physics prospects with MeV neutrino-argon charged current interactions using enhanced photon detection in future LArTPCs, Phys. Rev. D 112, 012019 (2025), arXiv:2502.18498 [physics.ins-det].

[B5]

B. Hartsock, N. Solomey, J. Folkerts et al., Segment geometry optimization and prototype studies of a multi-coincidence GAGG solar neutrino detector, Nucl. Instrum. Meth. A 1078, 170597 (2025), arXiv:2502.05095 [hep-ex].

[B6]

C. Cuesta Soria (DUNE Collaboration), Supernova and solar neutrino searches at DUNE, PoS TAUP2023, 168 (2024), arXiv:2311.06134 [hep-ex].

[B7]

S. Hedges et al. (nEXO Collaboration), Supernova electron-neutrino interactions with xenon in the nEXO detector, Phys. Rev. D 110, 093002 (2024), arXiv:2405.19419 [hep-ph].

[B8]

P. An et al. (COHERENT Collaboration), Measurement of nat^{\mathrm{nat}}Pb(νe,Xn)(\nu_e, Xn) production with a stopped-pion neutrino source, Phys. Rev. D 108, 072001 (2023), arXiv:2212.11295 [hep-ex].

[B9]

M. R. Buckley, A. Mastbaum, and G. Mohlabeng, Directional neutrino searches for Galactic Center dark matter at large underground LArTPCs, Phys. Rev. D 107, 092006 (2023), arXiv:2210.04920 [hep-ex].

[B10]

P. An et al. (COHERENT Collaboration), Measurement of Electron-Neutrino Charged-Current Cross Sections on 127^{127}I with the COHERENT NaIν\nuE Detector, Phys. Rev. Lett. 131, 221801 (2023), arXiv:2305.19594 [nucl-ex].

[B11]

A. Abed Abud et al. (DUNE Collaboration), Impact of cross-section uncertainties on supernova neutrino spectral parameter fitting in the Deep Underground Neutrino Experiment, Phys. Rev. D 107, 112012 (2023), arXiv:2303.17007 [hep-ex].

[B12]

D. Akimov et al. (COHERENT Collaboration), Measurement of the Coherent Elastic Neutrino-Nucleus Scattering Cross Section on CsI by COHERENT, Phys. Rev. Lett. 129, 081801 (2022), arXiv:2110.07730 [hep-ex].

[B13]

I. Martinez-Soler, Y. F. Perez-Gonzalez, and M. Sen, Signs of pseudo-Dirac neutrinos in SN1987A data, Phys. Rev. D 105, 095019 (2022), arXiv:2105.12736 [hep-ph].

[B14]

A. Mastbaum, F. Psihas, and J. Zennamo, Xenon-doped liquid argon TPCs as a neutrinoless double beta decay platform, Phys. Rev. D 106, 092002 (2022), arXiv:2203.14700 [hep-ex].

[B15]

S. Kubota et al. (Q-Pix Collaboration), Enhanced low-energy supernova burst detection in large liquid argon time projection chambers enabled by Q-Pix, Phys. Rev. D 106, 032011 (2022), arXiv:2203.12109 [hep-ex].

[B16]

B. Abi et al. (DUNE Collaboration), Supernova neutrino burst detection with the Deep Underground Neutrino Experiment, Eur. Phys. J. C 81, 423 (2021), arXiv:2008.06647 [hep-ex].

[B17]

N. Van Dessel, A. Nikolakopoulos, and N. Jachowicz, Lepton kinematics in low energy neutrino-Argon interactions, Phys. Rev. C 101, 045502 (2020), arXiv:1912.10714 [nucl-th].

[B18]

A. de Gouvêa, I. Martinez-Soler, and M. Sen, Impact of neutrino decays on the supernova neutronization-burst flux, Phys. Rev. D 101, 043013 (2020), arXiv:1910.01127 [hep-ph].

[B19]

A. De Gouvêa, I. Martinez-Soler, Y. F. Perez-Gonzalez et al., Fundamental physics with the diffuse supernova background neutrinos, Phys. Rev. D 102, 123012 (2020), arXiv:2007.13748 [hep-ph].

[B20]

W. Castiglioni, W. Foreman, I. Lepetic et al., Benefits of MeV-scale reconstruction capabilities in large liquid argon time projection chambers, Phys. Rev. D 102, 092010 (2020), arXiv:2006.14675 [physics.ins-det].

[B21]

N. Van Dessel, N. Jachowicz, and A. Nikolakopoulos, Forbidden transitions in neutral and charged current interactions between low-energy neutrinos and Argon, Phys. Rev. C 100, 055503 (2019), arXiv:1903.07726 [nucl-th].

References to MARLEY predictions

[C1]

S. A. Meighen-Berger, J. L. Newstead, J. F. Beacom et al., Enhancing DUNE's solar neutrino capabilities with neutral-current detection, Phys. Rev. Lett. 135, 011803 (2025), arXiv:2410.00330 [hep-ph].

[C2]

S.-F. Ge, C.-F. Kong, and A. Y. Smirnov, Testing the Origins of Neutrino Mass with Supernova-Neutrino Time Delay, Phys. Rev. Lett. 133, 121802 (2024), arXiv:2404.17352 [hep-ph].

[C3]

M. M. Saez, E. Rrapaj, A. Harada et al., Correlations and Distinguishability Challenges in Supernova Models: Insights from Future Neutrino Detectors, (2024), arXiv:2401.02531 [astro-ph.HE].

[C4]

M. M. Saez, Exploring Neutrino Mass Orderings through Supernova Neutrino Detection, Universe 9, 464 (2023), arXiv:2310.19939 [astro-ph.HE].

[C5]

F. Pompa, F. Capozzi, O. Mena et al., Absolute ν\nu mass measurement with the DUNE experiment, Phys. Rev. Lett. 129, 121802 (2022), arXiv:2203.00024 [hep-ph].

[C6]

S. W. Li, L. F. Roberts, and J. F. Beacom, Exciting Prospects for Detecting Late-Time Neutrinos from Core-Collapse Supernovae, Phys. Rev. D 103, 023016 (2021), arXiv:2008.04340 [astro-ph.HE].

[C7]

V. De Romeri, P. Martínez-Miravé, and M. Tórtola, Signatures of primordial black hole dark matter at DUNE and THEIA, JCAP 10, 051 (2021), arXiv:2106.05013 [hep-ph].

[C8]

K. J. Kelly, P. A. N. Machado, A. Marchionni et al., LEvEL: Low-Energy Neutrino Experiment at the LHC, JHEP 08, 087 (2021), arXiv:2103.00009 [hep-ph].

[C9]

M. Bendahman et al., Exploring the Potential of Multi-Detector Analyses for Core-Collapse Supernova Neutrino Detection, PoS ICRC2021, 1090 (2021).