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The Askaryan Radio Array (ARA) is an ultra-high energy (UHE) neutrino telescope at the South Pole consisting of an array of radio antennas aimed at detecting the Askaryan radiation produced by neutrino interactions in the ice. Currently,…

The Askaryan Radio Array (ARA) is an in-ice ultrahigh energy (UHE) neutrino experiment at the South Pole. ARA aims to detect the radio emissions from neutrino-induced particle showers using in-ice clusters of antennas buried ${\sim}200$ m…

Instrumentation and Methods for Astrophysics · Physics 2024-09-09 Marco Stein Muzio

Particle cascades induced by ultra-high-energy (UHE) cosmic rays and neutrinos impacting on the lunar regolith usually radiate Cherenkov radio emissions due to the presence of excess negative charge, which is known as Askaryan effect.…

Instrumentation and Methods for Astrophysics · Physics 2023-02-15 Linjie Chen , Marc Klein Wolt , Amin Aminaei , Stijn Buitink , Heino Falcke

We present a semi-analytical method for the calculation of coherent Askaryan radiation in showers induced by neutrinos of any flavor in ice. We compare our results with those of a full Monte Carlo simulation based on the ZHAireS code. This…

High Energy Astrophysical Phenomena · Physics 2020-04-15 Jaime Alvarez-Muñiz , P. M. Hansen , Andrés Romero-Wolf , Enrique Zas

The Askaryan Radio Array (ARA) is an in-ice ultrahigh energy (UHE, >10 PeV) neutrino experiment at the South Pole, designed to detect neutrino-induced radio emission in ice. It consists of five independent stations, each featuring a cubic…

High Energy Astrophysical Phenomena · Physics 2025-08-11 Paramita Dasgupta

The in-ice radio interferometric phased array technique for detection of high energy neutrinos looks for Askaryan emission from neutrinos interacting in large volumes of glacial ice, and is being developed as a way to achieve a low energy…

The Askaryan Radio Array (ARA), located near the South Pole, is among the first experiments there designed to detect ultra-high energy neutrinos through the Askaryan effect. When such neutrinos interact in dense media like ice, they…

Instrumentation and Methods for Astrophysics · Physics 2025-09-26 Mohammad Ful Hossain Seikh , Dave Besson , Pawan Giri

Sensitivity to ultra-high-energy neutrinos ($E>10^{17}$eV) can be obtained cost-efficiently by exploiting the Askaryan effect in ice, where a particle cascade induced by the neutrino interaction produces coherent radio emission that can be…

Instrumentation and Methods for Astrophysics · Physics 2023-02-06 Jakob Beise , Christian Glaser

The Askaryan Radio Array (ARA) is an in-ice ultra high energy (UHE, $>10$ PeV) neutrino experiment at the South Pole that aims to detect UHE neutrino-induced radio emission in ice. ARA consists of five independent stations each consisting…

High Energy Astrophysical Phenomena · Physics 2024-10-01 Paramita Dasgupta

Detection of high-energy neutrinos via the radio technique allows for an exploration of the neutrino energy range from $\sim10^{16}$\~eV to $\sim10^{20}$\~eV with unprecedented precision. These Askaryan detectors have matured in two pilot…

Instrumentation and Methods for Astrophysics · Physics 2019-11-07 Christian Glaser

The Askaryan Radio Array (ARA) is an in-ice ultrahigh energy (UHE, $>10$ PeV) neutrino experiment at the South Pole that aims to detect radio emissions from neutrino-induced particle cascades. ARA has five independent stations which…

High Energy Astrophysical Phenomena · Physics 2023-08-24 Paramita Dasgupta , Marco Stein Muzio

Particle cascades initiated by ultra-high energy (UHE) neutrinos in the lunar regolith will emit an electromagnetic pulse with a time duration of the order of nano seconds through a process known as the Askaryan effect. It has been shown…

High Energy Astrophysical Phenomena · Physics 2010-02-23 O. Scholten , S. Buitink , J. Bacelar , R. Braun , A. G. de Bruyn , H. Falcke , K. Singh , B. Stappers , R. G. Strom , R. al Yahyaoui

The ARIANNA experiment is an Askaryan radio detector designed to measure high-energy neutrino induced cascades within the Antarctic ice. Ultra-high-energy neutrinos above $10^{16}$ eV have an extremely low flux, so experimental data…

Ultra high energy (UHE) particles of cosmic origin impact the lunar regolith and produce radio signals through Askaryan effect, signals that can be detected by Earth based radio telescopes. We calculate the expected sensitivity for…

Astrophysics · Physics 2008-11-26 Sukanta Panda , Subhendra Mohanty , Padmanabhan Janardhan , Oscar Stål

One of the most tantalizing questions in astronomy and astrophysics, namely the origin and the evolution of the cosmic accelerators that produce the highest energy cosmic rays (UHECR), may be best addressed through the observation of ultra…

Cosmology and Nongalactic Astrophysics · Physics 2014-04-29 Pisin Chen , K. D. Hoffman

The detection of ultra-high-energy (UHE) neutrinos in the EeV range is the goal of current and future in-ice radio arrays at the South Pole and in Greenland. Here, we present a deep neural network that can reconstruct the main neutrino…

Instrumentation and Methods for Astrophysics · Physics 2026-04-14 Nils Heyer , Christian Glaser , Thorsten Glüsenkamp , Martin Ravn

The origin of the most energetic particles in nature, the ultra-high-energy (UHE) cosmic rays, is still a mystery. Only the most energetic of these have sufficiently small angular deflections to be used for directional studies, and their…

Neutrinos interact with matter only through weak processes with low cross-section. To detect cosmic neutrinos most efforts have relied on the detection of visible Vavilov-Cerenkov light in detectors embedded in the target volumes. To access…

Astrophysics · Physics 2007-05-23 Oscar Stål , Jan Bergman , Bo Thidé , Lennart Åhlén , Gunnar Ingelman

One of the most promising techniques for detecting ultra-high energy neutrinos involves the use of radio antennas to observe the 10-1000 MHz radiation generated by the showers that neutrinos induce in large volumes of ice. The expected…

High Energy Astrophysical Phenomena · Physics 2025-06-05 Alan Coleman , Christian Glaser , Ryan Rice-Smith , Steven Barwick , Dave Besson