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Snowmass2021 Cosmic Frontier: Modeling, statistics, simulations, and computing needs for direct dark matter detection
/ Kahn, Yonatan (Illinois U., Urbana) ; Monzani, Maria Elena (SLAC ; KIPAC, Menlo Park ; Vatican Astron. Observ.) ; Palladino, Kimberly J. (Oxford U.) ; Anderson, Tyler (SLAC ; KIPAC, Menlo Park) ; Bard, Deborah (LBL, Berkeley) ; Baxter, Daniel (Fermilab) ; Buuck, Micah (SLAC ; KIPAC, Menlo Park) ; Cartaro, Concetta (SLAC ; KIPAC, Menlo Park) ; Collar, Juan I. (Chicago U., EFI) ; Diamond, Miriam (Toronto U.) et al.
This paper summarizes the modeling, statistics, simulation, and computing needs of direct dark matter detection experiments in the next decade..
arXiv:2203.07700 ; FERMILAB-CONF-22-173-PPD.
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Fermilab Library Server - eConf - Fulltext - Fulltext
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Gravitational wave probes of dark matter: challenges and opportunities
/ Bertone, Gianfranco (U. Amsterdam, GRAPPA) ; Croon, Djuna (TRIUMF) ; Amin, Mustafa A. (Rice U.) ; Boddy, Kimberly K. (Johns Hopkins U.) ; Kavanagh, Bradley J. (Amsterdam U. ; U. Amsterdam, GRAPPA) ; Mack, Katherine J. (NCSU, Raleigh) ; Natarajan, Priyamvada (Yale U.) ; Opferkuch, Toby (CERN) ; Schutz, Katelin (UC, Berkeley) ; Takhistov, Volodymyr (UCLA, Los Angeles (main)) et al.
In this white paper, we discuss the prospects for characterizing and identifying dark matter using gravitational waves, covering a wide range of dark matter candidate types and signals. We argue that present and upcoming gravitational wave probes offer unprecedented opportunities for unraveling the nature of dark matter and we identify the most urgent challenges and open problems with the aim of encouraging a strong community effort at the interface between these two exciting fields of research..
arXiv:1907.10610.-
2020 - 17 p.
- Published in : SciPost Phys. Core 3 (2020) 007
Fulltext: PDF; Fulltext from publisher: PDF;
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SENSEI: First Direct-Detection Constraints on sub-GeV Dark Matter from a Surface Run
/ Crisler, Michael (Fermilab) ; Essig, Rouven (YITP, Stony Brook) ; Estrada, Juan (Fermilab) ; Fernandez, Guillermo (Fermilab) ; Tiffenberg, Javier (Fermilab) ; Sofo haro, Miguel (Fermilab ; Centro Atomico Bariloche) ; Volansky, Tomer (Princeton, Inst. Advanced Study ; Tel Aviv U.) ; Yu, Tien-Tien (Oregon U. ; CERN)
/SENSEI Collaboration
The Sub-Electron-Noise Skipper CCD Experimental Instrument (SENSEI) uses the recently developed Skipper-CCD technology to search for electron recoils from the interaction of sub-GeV dark matter particles with electrons in silicon. We report first results from a prototype SENSEI detector, which collected 0.019 gram-days of commissioning data above ground at Fermi National Accelerator Laboratory. [...]
arXiv:1804.00088; FERMILAB-PUB-18-116-AE-PPD; YITP-SB-18-4; CERN-TH-2018-070.-
2018-08-09 - 6 p.
- Published in : Phys. Rev. Lett. 121 (2018) 061803
Article from SCOAP3: PDF; Fulltext: 1804.00088 - PDF; fermilab-pub-18-116-ae-ppd - PDF; Fulltext from Publisher: PDF; External link: Fermilab Library Server (fulltext available)
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US Cosmic Visions: New Ideas in Dark Matter 2017: Community Report
/ Battaglieri, Marco (INFN, Genoa) ; Belloni, Alberto (Maryland U.) ; Chou, Aaron (Fermilab) ; Cushman, Priscilla (Minnesota U.) ; Echenard, Bertrand (Caltech) ; Essig, Rouven (SUNY, Stony Brook) ; Estrada, Juan (Fermilab) ; Feng, Jonathan L. (UC, Irvine) ; Flaugher, Brenna (Fermilab) ; Fox, Patrick J. (Fermilab) et al.
This white paper summarizes the workshop "U.S. [...]
arXiv:1707.04591 ; FERMILAB-CONF-17-282-AE-PPD-T.
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2017 - 113.
Fermilab Library Server (fulltext available) - Symmetry Magazine article - Full text - Fulltext
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Single-electron and single-photon sensitivity with a silicon Skipper CCD
/ Tiffenberg, Javier (Fermilab) ; Sofo-Haro, Miguel (Fermilab ; Balseiro Inst., San Carlos de Bariloche) ; Drlica-Wagner, Alex (Fermilab) ; Essig, Rouven (YITP, Stony Brook) ; Guardincerri, Yann (Fermilab) ; Holland, Steve (LBL, Berkeley) ; Volansky, Tomer (Tel Aviv U.) ; Yu, Tien-Tien (CERN)
/SENSEI Collaboration
We have developed a non-destructive readout system that uses a floating-gate amplifier on a thick, fully depleted charge coupled device (CCD) to achieve ultra-low readout noise of 0.068 e- rms/pix. This is the first time that discrete sub-electron readout noise has been achieved reproducibly over millions of pixels on a stable, large-area detector. [...]
arXiv:1706.00028; FERMILAB-PUB-17-183-AE-E-PPD; YITP-SB-16-25; CERN-TH-2017-114.-
2017-09-26 - 6 p.
- Published in : Phys. Rev. Lett. 119 (2017) 131802
Fulltext: fermilab-pub-17-183-ae-e-ppd - PDF; arXiv:1706.00028 - PDF; 10.1103_PhysRevLett.119.131802 - PDF; External links: Fermilab Library Server (fulltext available); Open Access fulltext
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