Light dark matter anomalies after LUX
- Creators
- Gresham, Moira I.
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Zurek, Kathryn M.
Abstract
We examine the consistency of light dark matter (DM) elastic scattering in CoGeNT, DAMA, and CDMS-silicon in light of constraints from XENON, CDMS, LUX, PICASSO and COUPP. We consider a variety of operators that have been employed to reconcile anomalies with constraints, including anapole, magnetic dipole, momentum-dependent, and isospin-violating DM. We find that elastic scattering through these alternative operators does not substantially reduce the tension between the signals and the null constraints for operators where at least two of the three purported signals map onto a common space in the DM mass-scattering cross-section plane. Taking a choice of the scintillation efficiency that lies at the −1σ region of the Manzur et al. measurement relieves tension between signals and the LUX constraint—in particular for a magnetic dipole interaction and a xenophobic interaction (though for the latter the signal regions do not substantially overlap). We also find that modest changes in the halo model do not alter this result. We conclude that, even relaxing the assumption about the type of elastic scattering interaction and taking a conservative choice for the scintillation efficiency, LUX and the results from other null experiments remain in tension with a light DM elastic scattering explanation of direct detection anomalies.
Additional Information
© 2014 American Physical Society. (Received 27 November 2013; published 24 January 2014) The work of K. Z. is supported by NASA astrophysics theory Grant No. NNX11AI17G and by NSF CAREER Grant No. PHY 1049896. We thank Matthew Szydagis, Mani Tripathi, and Chris Savage for helpful comments.Attached Files
Published - PhysRevD.89.016017.pdf
Submitted - 1311.2082.pdf
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Additional details
- Eprint ID
- 96410
- Resolver ID
- CaltechAUTHORS:20190613-164148698
- NASA
- NNX11AI17G
- NSF
- PHY-1049896
- Created
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2019-06-17Created from EPrint's datestamp field
- Updated
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2021-11-16Created from EPrint's last_modified field