NS
N. L. Strotjohann
astro-ph.HEhep-exastro-ph.IMastro-ph.SRhep-phastro-ph.COastro-ph.GAphysics.ins-detastro-ph.EPcs.DC
On Valency
published · living versionsW_mzpzrnd2·v1 · currentpublished
The IceCube Neutrino Observatory: Instrumentation and Online Systems
with IceCube Collaboration, M. G. Aartsen, M. Ackermann, J. Adams +348
1 version
Preprints & journals
155 papers in the corpus · 2013–2026Low-Luminosity Type IIP Supernovae from the Zwicky Transient Facility Census of the Local Universe. I: Luminosity Function, Volumetric Rate2502.19493v2 · Kaustav K. Das, Mansi M. Kasliwal, Christoffer Fremling et al.2025 · 11 citationsarXiv
Science with a large field-of-view polarization survey: The Large Array Survey Telescope Polarization Node (LAST-P)2601.03921v1 · V. Barbosa Martins, N. Jordana Mitjans, S. Garrappa et al.2026 · 0 citationsarXiv
A cosmic formation site of silicon and sulphur revealed by a new type of supernova explosion2409.02054v1 · Steve Schulze, Avishay Gal-Yam, Luc Dessart et al.2024 · 17 citationsarXiv
SN 2019odp: A Massive Oxygen-Rich Type Ib Supernova2303.14146v2 · T. Schweyer, J. Sollerman, A. Jerkstrand et al.2023 · 10 citationsA&A 693, A13 (2025)
The Early Ultraviolet Light-Curves of Type II Supernovae and the Radii of Their Progenitor Stars2310.16885v2 · Ido Irani, Jonathan Morag, Avishay Gal-Yam et al.2023 · 26 citationsarXiv
Development of a general analysis and unfolding scheme and its application to measure the energy spectrum of atmospheric neutrinos with IceCube: IceCube Collaboration.25995705 · Aartsen, M G, Ackermann, M, Adams, J et al.2024 · 55 citationsThe European physical journal. C, Particles and fields. 2015;75(3):116
Resolving the explosion of supernova 2023ixf in Messier 101 within its complex circumstellar environment2310.10727v2 · E. A. Zimmerman, I. Irani, P. Chen et al.2023 · 87 citationsNature 627, 759 (2024)
Asteroid collisions: expected visibility and rate2403.03248v1 · E. O. Ofek, D. Polishook, D. Kushnir et al.2024 · 0 citationsarXiv
A bias-corrected luminosity function for red supergiant supernova progenitor stars2311.00744v2 · Nora L. Strotjohann, Eran O. Ofek, Avishay Gal-Yam2023 · 14 citationsarXiv
The IceCube Neutrino Observatory: Instrumentation and Online Systems1612.05093v3 · M. G. Aartsen, M. Ackermann, J. Adams et al.2016 · 842 citationsJINST 12 P03012 (2017)on Valency
A 12.4-day periodicity in a close binary system after a supernova.38200292 · Chen, Ping, Gal-Yam, Avishay, Sollerman, Jesper et al.2024 · 39 citationsNature. 2024;625(7994):253-258
UV to near-IR observations of the DART-Dimorphos collision2311.12007v1 · E. O. Ofek, D. Kushnir, D. Polishook et al.2023 · 6 citationsarXiv
Minutes-duration Optical Flares with Supernova Luminosities2311.10195v1 · Anna Y. Q. Ho, Daniel A. Perley, Ping Chen et al.2023 · 28 citationsarXiv
Photometric prioritization of neutron star merger candidates2311.04863v1 · E. O. Ofek, N L. Strotjohann, I. Arcavi et al.2023 · 1 citationarXiv
The broad-lined Type-Ic supernova SN 2022xxf with extraordinary two-humped light curves2303.16925v2 · H. Kuncarayakti, J. Sollerman, L. Izzo et al.2023 · 30 citationsA&A 678, A209 (2023)
The Large Array Survey Telescope -- Pipeline. I. Basic image reduction and visit coaddition2310.13063v1 · E. O. Ofek, Y. Shvartzvald, A. Sharon et al.2023 · 13 citationsarXiv
A 12.4 day periodicity in a close binary system after a supernova2310.07784v1 · Ping Chen, Avishay Gal-Yam, Jesper Sollerman et al.2023 · 39 citationsarXiv
Search for neutrinos from decaying dark matter with IceCube: IceCube Collaboration.30930683 · Aartsen, M G, Ackermann, M, Adams, J et al.2023 · 102 citationsThe European physical journal. C, Particles and fields. 2018;78(10):831
SN 2022oqm -- a Ca-rich explosion of a compact progenitor embedded in C/O circumstellar material2210.02554v3 · I. Irani, Ping Chen, Jonathan Morag et al.2022 · 14 citationsarXiv
The Large Array Survey Telescope -- Science Goals2304.02719v2 · S. Ben-Ami, E.O. Ofek, D. Polishook et al.2023 · 21 citationsPASP 135 085002 (2023)
The prevalence and influence of circumstellar material around hydrogen-rich supernova progenitors2212.03313v2 · Rachel J. Bruch, Avishay Gal-Yam, Ofer Yaron et al.2022 · 96 citationsarXiv
The Large Array Survey Telescope -- System Overview and Performances2304.04796v1 · E. O. Ofek, S. Ben-Ami, D. Polishook et al.2023 · 41 citationsarXiv
A radio-detected Type Ia supernova with helium-rich circumstellar material2210.07725v2 · Erik C. Kool, Joel Johansson, Jesper Sollerman et al.2022 · 44 citationsNature 617 (2023), 477
A Systematic Study of Ia-CSM Supernovae from the ZTF Bright Transient Survey2301.04637v1 · Yashvi Sharma, Jesper Sollerman, Christoffer Fremling et al.2023 · 38 citationsarXiv
SN2020qlb: A hydrogen-poor superluminous supernova with well-characterized light curve undulations2205.11143v2 · S. L. West, R. Lunnan, C. M. B. Omand et al.2022 · 21 citationsA&A 670, A7 (2023)
Detection of astrophysical tau neutrino candidates in IceCube2011.03561v3 · R. Abbasi, M. Ackermann, J. Adams et al.2020 · 62 citationsEur. Phys. J. C 82, 1031 (2022)
Three Core-Collapse Supernovae with Nebular Hydrogen Emission2107.14503v1 · J. Sollerman, S. Yang, S. Schulze et al.2021 · 0 citationsA&A 655, A105 (2021)
SN 2019zrk, a bright SN 2009ip analog with a precursor2206.06497v1 · Claes Fransson, Jesper Sollerman, Nora L. Strotjohann et al.2022 · 17 citationsA&A 666, A79 (2022)
First all-flavor search for transient neutrino emission using 3-years of IceCube DeepCore data2011.05096v2 · R. Abbasi, M. Ackermann, J. Adams et al.2020 · 8 citationsJCAP 01 (2022) 027
Candidate Tidal Disruption Event AT2019fdr Coincident with a High-Energy Neutrino2111.09390v2 · Simeon Reusch, Robert Stein, Marek Kowalski et al.2021 · 133 citationsPhys. Rev. Lett. 128, 221101 (2022)
The Type Icn SN 2021csp: Implications for the Origins of the Fastest Supernovae and the Fates of Wolf-Rayet Stars2111.12110v2 · Daniel A. Perley, Jesper Sollerman, Steve Schulze et al.2021 · 89 citationsarXiv
Less than 1% of Core-Collapse Supernovae in the local universe occur in elliptical galaxies2110.02252v1 · I. Irani, S. J. Prentice, S. Schulze et al.2021 · 28 citationsarXiv
A WC/WO star exploding within an expanding carbon-oxygen-neon nebula2111.12435v1 · A. Gal-Yam, R. Bruch, S. Schulze et al.2021 · 106 citationsarXiv
A low-energy explosion yields the underluminous Type IIP SN 2020cxd2107.13439v1 · S. Yang, J. Sollerman, N. L. Strotjohann et al.2021 · 34 citationsA&A 655, A90 (2021)
An eV-scale sterile neutrino search using eight years of atmospheric muon neutrino data from the IceCube Neutrino Observatory2005.12942v4 · M. G. Aartsen, R. Abbasi, M. Ackermann et al.2020 · 92 citationsPhys. Rev. Lett. 125, 141801 (2020)
The IceCube high-energy starting event sample: Description and flux characterization with 7.5 years of data2011.03545v1 · R. Abbasi, M. Ackermann, J. Adams et al.2020 · 365 citationsPhys. Rev. D 104, 022002 (2021)
Measurement of the high-energy all-flavor neutrino-nucleon cross section with IceCube2011.03560v1 · R. Abbasi, M. Ackermann, J. Adams et al.2020 · 49 citationsPhys. Rev. D 104, 022001 (2021)
Multimessenger Gamma-Ray and Neutrino Coincidence Alerts using HAWC and IceCube sub-threshold Data2008.10616v2 · H. A. Ayala Solares, S. Coutu, J. J. DeLaunay et al.2020 · 15 citationsAstrophys. J. 906 (2021) 63
Bright, months-long stellar outbursts announce the explosion of interaction-powered supernovae2010.11196v3 · Nora L. Strotjohann, Eran O. Ofek, Avishay Gal-Yam et al.2020 · 122 citationsApJ 907 99 (2021)
Searches for neutrinos from cosmic-ray interactions in the Sun using seven years of IceCube data1912.13135v2 · M. G. Aartsen, M. Ackermann, J. Adams et al.2019 · 12 citationsJCAP02(2021)025
Measurements of the Time-Dependent Cosmic-Ray Sun Shadow with Seven Years of IceCube Data -- Comparison with the Solar Cycle and Magnetic Field Models2006.16298v1 · M. G. Aartsen, R. Abbasi, M. Ackermann et al.2020 · 19 citationsPhys. Rev. D 103, 042005 (2021)
The Zwicky Transient Facility Bright Transient Survey. II. A Public Statistical Sample for Exploring Supernova Demographics2009.01242v2 · Daniel A. Perley, Christoffer Fremling, Jesper Sollerman et al.2020 · 292 citationsarXiv
Supernova PTF12glz: a possible shock breakout driven through an aspherical wind1808.04232v2 · Maayane T. Soumagnac, Eran O. Ofek, Avishay Gal-Yam et al.2018 · 23 citationsarXiv
Combined search for neutrinos from dark matter self-annihilation in the Galactic Centre with ANTARES and IceCube2003.06614v2 · A. Albert, M. Andr'e, M. Anghinolfi et al.2020 · 69 citationsPhys. Rev. D 102, 082002 (2020)
Searching for eV-scale sterile neutrinos with eight years of atmospheric neutrinos at the IceCube neutrino telescope2005.12943v2 · M. G. Aartsen, R. Abbasi, M. Ackermann et al.2020 · 73 citationsPhys. Rev. D 102, 052009 (2020)
Characteristics of the diffuse astrophysical electron and tau neutrino flux with six years of IceCube high energy cascade data2001.09520v2 · M. G. Aartsen, M. Ackermann, J. Adams et al.2020 · 277 citationsPhys. Rev. Lett. 125, 121104 (2020)
A Search for MeV to TeV Neutrinos from Fast Radio Bursts with IceCube1908.09997v2 · M. G. Aartsen, M. Ackermann, J. Adams et al.2019 · 32 citationsAstrophys.J. 890 (2020) 111
Early Ultra-Violet observations of type IIn supernovae constrain the asphericity of their circumstellar material2001.05518v1 · Maayane T. Soumagnac, Eran O. Ofek, Jingyi Liang et al.2020 · 15 citationsarXiv
Search for Multi-messenger Sources of Gravitational Waves and High-energy Neutrinos with Advanced LIGO during its first Observing Run, ANTARES and IceCube1810.10693v2 · ANTARES, IceCube, LIGO et al.2018 · 47 citationsAstrophys.J. 870 (2019) 134
Search for transient optical counterparts to high-energy IceCube neutrinos with Pan-STARRS11901.11080v2 · E. Kankare, M. Huber, S. J. Smartt et al.2019 · 26 citationsAstron. Astrophys. 626 (2019) A117
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