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Synchrotron Radiation in High Magnetic Fields

Published online by Cambridge University Press:  07 February 2017

D. F. Falla
Affiliation:
Department of Physics, The University College of Wales, Aberystwyth, U.K.
A. Evans
Affiliation:
Department of Physics, The University College of Wales, Aberystwyth, U.K.

Abstract

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We suggest that if there exist within the Crab Nebula localised condensations of material containing high magnetic fields, (≫ 1 G), the rapidly evolving synchrotron radiation power spectrum emitted by a single electron can give a radiation continuum with a spectral index having a unique value similar to that observed in the optical and low-energy X-ray regions. One implication of this result is that a simple comparison between the observed fluxes of optical and gamma radiation emitted by the Nebula is no longer meaningful, so that one cannot draw any immediate conclusion regarding the fundamental mechanism of electron and gamma ray production.

Type
Session 5
Copyright
Copyright © Reidel 1971 

References

Bowyer, S., Byram, E. T., Chubb, T. A., and Friedman, H.: 1964, Science 146, 912.Google Scholar
Falla, D. F.: 1970, Astrophys. Letters 6, 77.Google Scholar
Fruin, J. H., Jelley, J. V., Long, C. D., Porter, N. A., and Weekes, T. C.: 1964, Phys. Letters 10, 176.Google Scholar
Gould, R. J. and Burbidge, G. R.: 1967, Handbuch der Physik 46 (2), 265.Google Scholar
Searle, L., Rodgers, A. W., Sargent, W. L. W., and Oke, J. B.: 1965, Nature 208, 1190.Google Scholar
Shen, C. S.: 1970, Phys. Rev. Letters 24, 410.Google Scholar
Trümper, J.: 1970, Astrophys. Letters 5, 271.Google Scholar