English

Observation of classically `forbidden' electromagnetic wave propagation and implications for neutrino detection

Instrumentation and Methods for Astrophysics 2018-08-07 v2 High Energy Astrophysical Phenomena

Abstract

Ongoing experimental efforts in Antarctica seek to detect ultra-high energy neutrinos by measurement of radio-frequency (RF) Askaryan radiation generated by the collision of a neutrino with an ice molecule. An array of RF antennas, deployed either in-ice or in-air, is used to infer the properties of the neutrino. To evaluate their experimental sensitivity, such experiments require a refractive index model for ray tracing radio-wave trajectories from a putative in-ice neutrino interaction point to the receiving antennas; this gives the degree of signal absorption or ray bending from source to receiver. The gradient in the density profile over the upper 200 meters of Antarctic ice, coupled with Fermat's least-time principle, implies ray "bending" and the existence of "forbidden" zones for predominantly horizontal signal propagation at shallow depths. After re-deriving the formulas describing such shadowing, we report on experimental results that, somewhat unexpectedly, demonstrate the existence of electromagnetic wave transport modes from nominally shadowed regions. The fact that this shadow-signal propagation is observed both at South Pole and the Ross Ice Shelf in Antarctica suggests that the effect may be a generic property of polar ice, with potentially important implications for experiments seeking to detect neutrinos.

Keywords

Cite

@article{arxiv.1804.10430,
  title  = {Observation of classically `forbidden' electromagnetic wave propagation and implications for neutrino detection},
  author = {S. W. Barwick and E. C. Berg and D. Z. Besson and G. Gaswint and C. Glaser and A. Hallgren and J. C. Hanson and S. R. Klein and S. Kleinfelder and L. Köpke and I. Kravchenko and R. Lahmann and U. Latif and J. Nam and A. Nelles and C. Persichilli and P. Sandstrom and J. Tatar and E. Unger},
  journal= {arXiv preprint arXiv:1804.10430},
  year   = {2018}
}

Comments

33 pages, 14 figures, accepted for publication in JCAP