Export citation

Export citation

Choose format for download:

Download Citation
  • Access by Xinjiang University

Possible evidence for dark matter annihilations from the excess microwave emission around the center of the Galaxy seen by the Wilkinson Microwave Anisotropy Probe

Dan Hooper1, Douglas P. Finkbeiner2, and Gregory Dobler2

  • 1Theoretical Astrophysics, Fermi National Accelerator Laboratory, Batavia, Illinois 60510, USA
  • 2Harvard-Smithsonian Center for Astrophysics, 60 Garden Street, MS51, Cambridge, Massachusetts 02138, USA

Phys. Rev. D 76, 083012 – Published 29 October, 2007

DOI: https://doi.org/10.1103/PhysRevD.76.083012

Abstract

The Wilkinson Microwave Anisotropy Probe (WMAP) experiment has revealed an excess of microwave emission from the region around the center of our Galaxy. It has been suggested that this signal, known as the “WMAP haze,” could be synchrotron emission from relativistic electrons and positrons generated in dark matter annihilations. In this article, we revisit this possibility. We find that the angular distribution of the WMAP haze matches the prediction for dark matter annihilations with a cusped density profile, ρ(r)r1.2 in the inner kiloparsecs. Comparing the intensity in different WMAP frequency bands, we find that a wide range of possible weakly interacting massive particle (WIMP) annihilation modes are consistent with the spectrum of the haze for a WIMP with a mass in the 100 GeV to multi-TeV range. Most interestingly, we find that to generate the observed intensity of the haze, the dark matter annihilation cross section is required to be approximately equal to the value needed for a thermal relic, σv3×1026cm3/s. No boost factors are required. If dark matter annihilations are in fact responsible for the WMAP haze, and the slope of the halo profile continues into the inner Galaxy, GLAST is expected to detect gamma rays from the dark matter annihilations in the galactic center if the WIMP mass is less than several hundred GeV.

Article Text

References (19)

  1. D. N. Spergel et al. (WMAP Collaboration), Astrophys. J. Suppl. Ser. 170, 377 (2007).
  2. D. P. Finkbeiner, Astrophys. J. 614, 186 (2004).
  3. D. P. Finkbeiner, arXiv:astro-ph/0409027.
  4. D. P. Finkbeiner, M. Davis, and D. J. Schlegel, Astrophys. J. 524, 867 (1999).
  5. D. Finkbeiner, Astrophys. J. Suppl. Ser. 146, 407 (2003), and references therein.
  6. C. G. T. Haslam et al., Astron. Astrophys. Suppl. Ser. 47, 1 (1982).
  7. S. L. Snowden et al., Astrophys. J. 485, 125 (1997).
  8. L. Spitzer, Physical Processes in the Interstellar Medium (Wiley, New York, 1978).
  9. G. Dobler and D. Finkbeiner, “Extended Anomalous Foreground Emission in the WMAP 3-year Data” (unpublished).
  10. A. Broderick, N. Afshordi, D. Finkbeiner, and G. Dobler (unpublished).
  11. I. V. Moskalenko and A. W. Strong, Phys. Rev. D 60, 063003 (1999); E. A. Baltz and J. Edsjö, 59, 023511 (1998); S. Profumo and P. Ullio, J. Cosmol. Astropart. Phys. 07 (2004) 006; D. Hooper and J. Silk, Phys. Rev. D 71, 083503 (2005).
  12. E. A. Baltz and L. Wai, Phys. Rev. D 70, 023512 (2004).
  13. A. W. Strong, I. V. Moskalenko, and O. Reimer, Astrophys. J. 537, 763 (2000); 541, 1109(E) (2000).
  14. J. F. Navarro, C. S. Frenk, and S. D. M. White, Astrophys. J. 462, 563 (1996); 490, 493 (1997).
  15. B. Moore et al., Astrophys. J. 524, L19 (1999).
  16. F. Prada et al., arXiv:astro-ph/0401512; G. Bertone and D. Merritt, Mod. Phys. Lett. A 20, 1021 (2005).
  17. G. Jungman, M. Kamionkowski, and K. Griest, Phys. Rep. 267, 195 (1996).
  18. G. Servant and T. M. P. Tait, Nucl. Phys. B650, 391 (2003); H. C. Cheng, J. L. Feng, and K. T. Matchev, Phys. Rev. Lett. 89, 21 1301 (2002); D. Hooper and S. Profumo, arXiv:hep-ph/0701197 [Phys. Rep. (to be published)].
  19. G. Zaharijas and D. Hooper, Phys. Rev. D 73, 103501 (2006); F. Aharonian et al. (HESS Collaboration), Astron. Astrophys. 425, L13 (2004).

Outline

Information

Sign In to Your Journals Account

Filter

Filter

Article Lookup

Enter a citation