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Direct detection of sub-GeV dark matter with semiconductor targets

Journal Article · · Journal of High Energy Physics (Online)
 [1];  [2];  [3];  [2];  [4];  [2]
  1. Stony Brook Univ., Stony Brook, NY (United States); Stony Brook University
  2. Stony Brook Univ., Stony Brook, NY (United States)
  3. Stanford Univ., Stanford, CA (United States)
  4. Tel-Aviv Univ., Tel-Aviv (Israel)

Dark matter in the sub-GeV mass range is a theoretically motivated but largely unexplored paradigm. Such light masses are out of reach for conventional nuclear recoil direct detection experiments, but may be detected through the small ionization signals caused by dark matter-electron scattering. Semiconductors are well-studied and are particularly promising target materials because their O(1 eV) band gaps allow for ionization signals from dark matter particles as light as a few hundred keV. Current direct detection technologies are being adapted for dark matter-electron scattering. In this paper, we provide the theoretical calculations for dark matter-electron scattering rate in semiconductors, overcoming several complications that stem from the many-body nature of the problem. We use density functional theory to numerically calculate the rates for dark matter-electron scattering in silicon and germanium, and estimate the sensitivity for upcoming experiments such as DAMIC and SuperCDMS. We find that the reach for these upcoming experiments has the potential to be orders of magnitude beyond current direct detection constraints and that sub-GeV dark matter has a sizable modulation signal. We also give the first direct detection limits on sub-GeV dark matter from its scattering off electrons in a semiconductor target (silicon) based on published results from DAMIC. We make available publicly our code, QEdark, with which we calculate our results. Our results can be used by experimental collaborations to calculate their own sensitivities based on their specific setup. In conclusion, the searches we propose will probe vast new regions of unexplored dark matter model and parameter space.

Research Organization:
State Univ. of New York, Albany, NY (United States)
Sponsoring Organization:
USDOE Office of Science (SC)
Grant/Contract Number:
SC0008061
OSTI ID:
1326952
Alternate ID(s):
OSTI ID: 22609880
Journal Information:
Journal of High Energy Physics (Online), Journal Name: Journal of High Energy Physics (Online) Journal Issue: 5 Vol. 2016; ISSN 1029-8479
Publisher:
Springer BerlinCopyright Statement
Country of Publication:
United States
Language:
English

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Dirac materials for sub-MeV dark matter detection: New targets and improved formalism text January 2020
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Absorption of light dark matter in semiconductors text January 2016
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SENSEI: First Direct-Detection Constraints on sub-GeV Dark Matter from a Surface Run text January 2018
First Dark Matter Constraints from a SuperCDMS Single-Charge Sensitive Detector text January 2018
Sub-GeV Dark Matter in Superfluid He-4: an Effective Theory Approach text January 2019
Making dark matter out of light: freeze-in from plasma effects text January 2019
Direct Detection of Strongly Interacting Sub-GeV Dark Matter via Electron Recoils text January 2019
Sub-MeV Dark Matter and the Goldstone Modes of Superfluid Helium text January 2019
On the relation between Migdal effect and dark matter-electron scattering in isolated atoms and semiconductors text January 2019
Dirac Materials for Sub-MeV Dark Matter Detection: New Targets and Improved Formalism text January 2019

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