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This paper presents a novel technique for mitigating electrode backgrounds that limit the sensitivity of searches for low-mass dark matter (DM) using xenon time projection chambers.
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C. E. Dahl, The physics of background discrimination in liquid xenon, and first results from Xenon10 in the hunt for WIMP dark matter , Ph.D. thesis, Princeton U. (2009)
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A. Bailey, Dark matter searches and study of electrode design in LUX and LZ , Ph.D. thesis, Imperial Coll., London (2016)
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M. Szydagis, J. Balajthy, J. Brodsky, J. Cutter, J. Huang, E. Kozlova, B. Lenardo, A. Manalaysay, D. McKinsey, M. Mooney, J. Mueller, K. Ni, G. Rischbieter, M. Tripathi, C. Tunnell, V. Velan, and Z. Zhao, “NESTCollaboration/nest: New, flexible LXe NR yields and resolution model + G4 improvements + linear Noise + much more,” (2019)
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2016
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X. Cui et al. (PandaX-II), Phys. Rev. Lett. 119
2017
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E. Aprile et al. (XENON), Phys. Rev. D 94
2017
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M. Selvi (XENON), PoS NOW2018
2018
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Basic Research Needs for Dark-Matter Small Projects New Initiatives: Report of the Department of Energy’s High Energy Physics Workshop on Dark Matter (2018)
2018
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2018
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D. Akerib et al. (LUX), Phys. Rev. Lett. 118
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Z. Z. Liu et al. (CDEX Collaboration), Phys. Rev. Lett. 123
2019
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M. Kobayashi et al. , Physics Letters B 795
2019
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N. Aghanim et al. (Planck), Astron. Astrophys. 641
2020
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M. Tanaka, K. Aoyama, M. Kimura, T. Takeda, and K. Yorita, Journal of Physics: Conference Series 1468
2020
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M. Kimura, M. Tanaka, T. Washimi, and K. Yorita, Journal of Instrumentation 15
2020
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