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3 Phenomenology of the Massive Dark Photon
82. SENSEI Collaboration, O. Abramoff et al., SENSEI: direct-detection constraints on Sub-GeV
dark matter from a shallow underground run using a prototype Skipper-CCD. Phys. Rev. Lett.
122(16), 161801 (2019). arXiv:1901.10478 [hep-ex]. https://doi.org/10.1103/PhysRevLett.
122.161801
83. XMASS Collaboration, K. Abe et al., Search for dark matter in the form of hidden photons and axion-like particles in the XMASS detector. Phys. Lett. B787, 153–158 (2018).
arXiv:1807.08516 [astro-ph.CO]. https://doi.org/10.1016/j.physletb.2018.10.050
84. FUNK Experiment Collaboration, A. Andrianavalomahefa et al., Limits from the Funk Experiment on the Mixing Strength of Hidden-Photon Dark Matter in the Visible and NearUltraviolet Wavelength Range. arXiv:2003.13144 [astro-ph.CO]
85. D.F. Bartlett, P.E. Goldhagen, E.A. Phillips, Experimental test of Coulomb’s Law. Phys. Rev.
D 2, 483–487 (1970). https://doi.org/10.1103/PhysRevD.2.483
86. TEXONO Collaboration, M. Deniz et al., Measurement of Nu(e)-bar-Electron scattering
cross-section with a CsI(Tl) scintillating crystal array at the Kuo-Sheng nuclear power reactor. Phys. Rev. D 81, 072001 (2010). arXiv:0911.1597 [hep-ex]. https://doi.org/10.1103/
PhysRevD.81.072001
87. D. Fixsen, E. Cheng, J. Gales, J.C. Mather, R. Shafer, E. Wright, The cosmic microwave
background spectrum from the full COBE FIRAS data set. Astrophys. J. 473, 576 (1996).
https://doi.org/10.1086/178173. arXiv:astro-ph/9605054
88. A. Mirizzi, J. Redondo, G. Sigl, Microwave background constraints on mixing of photons
with hidden photons. JCAP 03, 026 (2009). https://doi.org/10.1088/1475-7516/2009/03/026.
arXiv:0901.0014 [hep-ph]
89. D. Wadekar, G.R. Farrar, First direct astrophysical constraints on dark matter interactions
with ordinary matter at very low velocities. arXiv:1903.12190 [hep-ph]
90. A. Bhoonah, J. Bramante, F. Elahi, S. Schon, Galactic Center gas clouds and novel bounds on
ultralight dark photon, vector portal, strongly interacting, composite, and super-heavy dark
matter. Phys. Rev. D 100(2), 023001 (2019). arXiv:1812.10919 [hep-ph]. https://doi.org/10.
1103/PhysRevD.100.023001
91. P. Arias, D. Cadamuro, M. Goodsell, J. Jaeckel, J. Redondo, A. Ringwald, WISPy
cold dark matter. JCAP 1206, 013 (2012). https://doi.org/10.1088/1475-7516/2012/06/013.
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92. J. Redondo, M. Postma, Massive hidden photons as lukewarm dark matter. JCAP 02, 005
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93. P. Sikivie, Experimental tests of the invisible Axion. Phys. Rev. Lett. 51, 1415–1417 (1983).
[Erratum: Phys.Rev.Lett. 52, 695 (1984)]. https://doi.org/10.1103/PhysRevLett.51.1415
94. P. deNiverville, M. Pospelov, A. Ritz, Observing a light dark matter beam with neutrino
experiments. Phys. Rev. D 84, 075020 (2011). arXiv:1107.4580 [hep-ph]. https://doi.org/10.
1103/PhysRevD.84.075020
95. MiniBooNE DM Collaboration, A. Aguilar-Arevalo et al., Dark matter search in nucleon,
pion, and electron channels from a proton beam dump with MiniBooNE. Phys. Rev. D 98(11),
112004 (2018). arXiv:1807.06137 [hep-ex]. https://doi.org/10.1103/PhysRevD.98.112004
96. CRESST Collaboration, G. Angloher et al., Results on light dark matter particles with a lowthreshold CRESST-II detector. Eur. Phys. J. C 76(1), 25 (2016). arXiv:1509.01515 [astroph.CO]. https://doi.org/10.1140/epjc/s10052-016-3877-3
97. SHiP Collaboration, M. Anelli et al., A facility to Search for Hidden Particles (SHiP) at the
CERN SPS. arXiv:1504.04956 [physics.ins-det]
98. BDX Collaboration, M. Battaglieri et al., Dark Matter Search in a Beam-Dump eXperiment
(BDX) at Jefferson Lab. arXiv:1607.01390 [hep-ex]
99. MicroBooNE, LAr1-ND, ICARUS-WA104 Collaboration, M. Antonello et al., A Proposal
for a Three Detector Short-Baseline Neutrino Oscillation Program in the Fermilab Booster
Neutrino Beam. arXiv:1503.01520 [physics.ins-det]
100. M. Battaglieri et al., US Cosmic Visions: New Ideas in Dark Matter 2017: Community Report
in U.S. Cosmic Visions: New Ideas in Dark Matter. 7, 2017. https://doi.org/10.1016/j.physletb.
2020.135258. arXiv:1707.04591 [hep-ph]
3 Phenomenology of the Massive Dark Photon
82. SENSEI Collaboration, O. Abramoff et al., SENSEI: direct-detection constraints on Sub-GeV
dark matter from a shallow underground run using a prototype Skipper-CCD. Phys. Rev. Lett.
122(16), 161801 (2019). arXiv:1901.10478 [hep-ex]. https://doi.org/10.1103/PhysRevLett.
122.161801
83. XMASS Collaboration, K. Abe et al., Search for dark matter in the form of hidden photons and axion-like particles in the XMASS detector. Phys. Lett. B787, 153–158 (2018).
arXiv:1807.08516 [astro-ph.CO]. https://doi.org/10.1016/j.physletb.2018.10.050
84. FUNK Experiment Collaboration, A. Andrianavalomahefa et al., Limits from the Funk Experiment on the Mixing Strength of Hidden-Photon Dark Matter in the Visible and NearUltraviolet Wavelength Range. arXiv:2003.13144 [astro-ph.CO]
85. D.F. Bartlett, P.E. Goldhagen, E.A. Phillips, Experimental test of Coulomb’s Law. Phys. Rev.
D 2, 483–487 (1970). https://doi.org/10.1103/PhysRevD.2.483
86. TEXONO Collaboration, M. Deniz et al., Measurement of Nu(e)-bar-Electron scattering
cross-section with a CsI(Tl) scintillating crystal array at the Kuo-Sheng nuclear power reactor. Phys. Rev. D 81, 072001 (2010). arXiv:0911.1597 [hep-ex]. https://doi.org/10.1103/
PhysRevD.81.072001
87. D. Fixsen, E. Cheng, J. Gales, J.C. Mather, R. Shafer, E. Wright, The cosmic microwave
background spectrum from the full COBE FIRAS data set. Astrophys. J. 473, 576 (1996).
https://doi.org/10.1086/178173. arXiv:astro-ph/9605054
88. A. Mirizzi, J. Redondo, G. Sigl, Microwave background constraints on mixing of photons
with hidden photons. JCAP 03, 026 (2009). https://doi.org/10.1088/1475-7516/2009/03/026.
arXiv:0901.0014 [hep-ph]
89. D. Wadekar, G.R. Farrar, First direct astrophysical constraints on dark matter interactions
with ordinary matter at very low velocities. arXiv:1903.12190 [hep-ph]
90. A. Bhoonah, J. Bramante, F. Elahi, S. Schon, Galactic Center gas clouds and novel bounds on
ultralight dark photon, vector portal, strongly interacting, composite, and super-heavy dark
matter. Phys. Rev. D 100(2), 023001 (2019). arXiv:1812.10919 [hep-ph]. https://doi.org/10.
1103/PhysRevD.100.023001
91. P. Arias, D. Cadamuro, M. Goodsell, J. Jaeckel, J. Redondo, A. Ringwald, WISPy
cold dark matter. JCAP 1206, 013 (2012). https://doi.org/10.1088/1475-7516/2012/06/013.
arXiv:1201.5902 [hep-ph]
92. J. Redondo, M. Postma, Massive hidden photons as lukewarm dark matter. JCAP 02, 005
(2009). https://doi.org/10.1088/1475-7516/2009/02/005. arXiv:0811.0326 [hep-ph]
93. P. Sikivie, Experimental tests of the invisible Axion. Phys. Rev. Lett. 51, 1415–1417 (1983).
[Erratum: Phys.Rev.Lett. 52, 695 (1984)]. https://doi.org/10.1103/PhysRevLett.51.1415
94. P. deNiverville, M. Pospelov, A. Ritz, Observing a light dark matter beam with neutrino
experiments. Phys. Rev. D 84, 075020 (2011). arXiv:1107.4580 [hep-ph]. https://doi.org/10.
1103/PhysRevD.84.075020
95. MiniBooNE DM Collaboration, A. Aguilar-Arevalo et al., Dark matter search in nucleon,
pion, and electron channels from a proton beam dump with MiniBooNE. Phys. Rev. D 98(11),
112004 (2018). arXiv:1807.06137 [hep-ex]. https://doi.org/10.1103/PhysRevD.98.112004
96. CRESST Collaboration, G. Angloher et al., Results on light dark matter particles with a lowthreshold CRESST-II detector. Eur. Phys. J. C 76(1), 25 (2016). arXiv:1509.01515 [astroph.CO]. https://doi.org/10.1140/epjc/s10052-016-3877-3
97. SHiP Collaboration, M. Anelli et al., A facility to Search for Hidden Particles (SHiP) at the
CERN SPS. arXiv:1504.04956 [physics.ins-det]
98. BDX Collaboration, M. Battaglieri et al., Dark Matter Search in a Beam-Dump eXperiment
(BDX) at Jefferson Lab. arXiv:1607.01390 [hep-ex]
99. MicroBooNE, LAr1-ND, ICARUS-WA104 Collaboration, M. Antonello et al., A Proposal
for a Three Detector Short-Baseline Neutrino Oscillation Program in the Fermilab Booster
Neutrino Beam. arXiv:1503.01520 [physics.ins-det]
100. M. Battaglieri et al., US Cosmic Visions: New Ideas in Dark Matter 2017: Community Report
in U.S. Cosmic Visions: New Ideas in Dark Matter. 7, 2017. https://doi.org/10.1016/j.physletb.
2020.135258. arXiv:1707.04591 [hep-ph]
