Cosmic Analogues of the Stern-Gerlach Experiment and the Detection of Light Bosons
arXiv:0810.3002 · doi:10.1088/0004-637X/699/1/L5
Abstract
We show that, by studying the arrival times of radio pulses from highly-magnetized pulsars, it may be possible to detect light spin-0 bosons (such as axions and axion-like particles) with a much greater sensitivity, over a broad particle mass range than is currently reachable by terrestrial experiments and indirect astrophysical bounds. In particular, we study the effect of splitting of photon-boson beams under intense magnetic field gradients in magnetars and show that radio pulses (at meter wavelengths) may be split and shift by a discernible phase down to a photon-boson coupling constant of g ~ 1e-14 [1/GeV]; i.e., about four orders of magnitude lower than current upper limits on g. The effect increases linearly with photon wavelength with split pulses having equal fluxes and similar polarizations. These properties make the identification of beam-splitting and beam deflection effects straightforward with currently available data. Better understanding of radio emission from magnetars is, however, required to confidently exclude regions in the parameter space when such effects are not observed.
4 pages, 3 figures
References in corpus (9)
- Transient pulsed radio emission from a magnetar
- SN 1994W: An Interacting Supernova or Two Interacting Shells?
- The redshift-dependence of gamma-ray absorption in the environments of strong-line AGN
- Inspecting absorption in the spectra of extra-galactic gamma-ray sources for insight into Lorentz invariance violation
- Probing Axions with Radiation from Magnetic Stars
- Spectral Signatures of Photon-Particle Oscillations from Celestial Objects
- Photon and Axion Splitting in an Inhomogeneous Magnetic Field
- Continuous Axion Photon Duality and its Consequences
- Localized Axion Photon States in a Strong Magnetic Field
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- Axions: From Magnetars and Neutron Star Mergers to Beam Dumps and BECs
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- Photon Production From The Scattering of Axions Out of a Solenoidal Magnetic Field
- On Axion's Effect on Propagation of Monochromatic Electromagnetic Wave Through Strong Magnetic Field
- Interaction of axions with relativistic spinning particles
- Radio-loud Magnetars as Detectors for Axions and Axion-like Particles
- Oscillating scalar field as dark matter through the cosmological epochs