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Organic liquid scintillators are used in many neutrino physics experiments of the past and present.
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1989
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C.E. Lane et al., The BOREX solar neutrino experiment , Proceedings, 9th Moriond Workshop, 24th Rencontre de Moriond, Les Arcs, France (1989) 401–406
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1990
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1996
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1999
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2000
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Cited alongside, same era.
J.N. Abdurashitov et al., Solar neutrino flux measurements by the Soviet-American Gallium Experiment (SAGE) for half the 22 year solar cycle , J. Exp. Theor. Phys. 95 (2002) 181–193
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2002
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2002
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2011
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2011
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C. Aberle et al., Large scale Gd-beta-diketonate based organic liquid scintillator production for antineutrino detection , JINST 7 (2012) P06008
2012
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2012
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Later among the works it cites.
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S.R. Elliott and P. Vogl, Double Beta Decay , Ann. Rev. of Nucl. and Part. Science 52 (2002) 115–151
2002
Cited alongside, same era.
K. Eguchi et al., First Results from KamLAND: Evidence for Reactor Antineutrino Disappearance , Phys. Rev.Lett. 90 (2003) 021802
2003
Cited alongside, same era.
M. Apollonio et al., Search for neutrino oscillations on a long base-line at the CHOOZ nuclear power station , Eur. Phys. J. C 27 (2003) 331–374
2003
Cited alongside, same era.
N.A. Danilov et al., Scintillators Based on Ytterbium Chloride Adducts with Neutral Organophosphorus Extractants for Detecting Solar Neutrino for LENS (Low-Energy Neutrino Spectroscopy) Experiment , Radiochem. 45 (2003) 140
2003
Cited alongside, same era.
C. Buck et al., Development of an optically pure In-( β \beta -diketonate for the scintillator of an 115
2003
Cited alongside, same era.
F. Suekane et al., An Overview of the KamLAND 1-kiloton Liquid Scintillator , arXiv:physics/0404071 (2004)
2004
Cited alongside, same era.
M. Yeh et al., Studies of Doped Scintillator at BNL: A Generic Method for Neutrino Measurement , AIP Conference Proceedings 785 (2005) 209
2005
Cited alongside, same era.
L. Winslow and R. Simpson, Characterizing quantum-dot-doped liquid scintillator for applications to neutrino detectors , JINST 7 (2012) P07010
2012
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F.P. An et al., Observation of Electron-Antineutrino Disappearance at Daya Bay , Phys. Rev. Lett. 108 (2012) 171803
2012
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K.N. Abazajian et al., Light Sterile Neutrinos: A White Paper , arXiv:hep-ph/1204.5379 (2012)
2012
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C. Buck et al., Measuring the 14
2012
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S.H. Song et al., Feasibility Study of a Gadolinium-loaded DIN-based Liquid Scintillator , Journal of the Korean Physical Society 63, No. 5 (2013) 970∼974
2013
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Y. Fukuda et al., Development of liquid scintillator containing a zirconium complex for neutrinoless double beta decay experiment , NIM A 732 (2013) 397–402
2013
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C. Aberle, J.J. Li, S. Weiss and L. Winslow, Optical properties of quantum-dot-doped liquid scintillators , JINST 8 (2013) P10015
2013
Later among the works it cites.
D. Allan et al., The electromagnetic calorimeter for the T2K near detector ND280 , JINST 8 (2013) P10019
2013
Later among the works it cites.
J.S. Park et al., Production and optical properties of Gd-loaded liquid scintillator for the RENO neutrino detector , NIM A 707 (2013) 45–-53
2013
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A.P. Serebrov et al., On possibility of realization NEUTRINO-4 experiment on search for oscillations of the reactor antineutrino into a sterile state , arXiv:hep-ph/1310.5521 (2013)
2013
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A. Gando et al., Limit on Neutrinoless β β \beta\beta Decay of 136
2013
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G. Keefer et al., Laboratory Studies on the Removal of Radon-Born Lead from KamLAND’s Organic Liquid Scintillator , Nucl. Instrum. Meth. A 769 (2014) 79-87
2014
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W. Beriguete et al., Production of a gadolinium-loaded liquid scintillator for the Daya Bay reactor neutrino experiment , NIM A 763 (2014) 82–88
2014
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F.P. An et al., Spectral measurement of electron antineutrino oscillation amplitude and frequency at Daya Bay , Phys. Rev. Lett. 112 (2014) 061801
2014
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C. Aberle, A. Elagin, H.J. Frisch, M. Wetsteinb and L. Winslow, Measuring directionality in double-beta decay and neutrino interactions with kiloton-scale scintillation detectors , JINST 9 (2014) P06012
2014
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2014
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Y. Abe et al., Improved measurements of the neutrino mixing angle θ 13 \theta_{13} with the Double Chooz detector , JHEP 10 (2014) 086
2014
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G. Bellini et al., Neutrinos from the primary proton–proton fusion process in the Sun , Nature 512 (2014) 383–386
2014
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S. Mufson et al., Liquid scintillator production for the NOvA experiment , NIM A 799 (2015) 1–9
2015
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C. Buck, B. Gramlich, S. Wagner, Light propagation and fluorescence quantum yields in liquid scintillators , JINST 10 (2015) P09007
2015
Later among the works it cites.
R.J. Ford for the SNO+ Collaboration, A Scintillator Purification Plant and Fluid Handling System for SNO+ , AIP Conf.Proc. 1672 (2015) 080003
2015
Later among the works it cites.
A. Gando et al., 7Be solar neutrino measurement with KamLAND , Phys. Rev. C 92 (2015) 055808
2015
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L.J. Bignell et al., Characterization and Modeling of a Water-based Liquid Scintillator , JINST 10 (2015) P12009
2015
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D.S. Akerib et al., LUX-ZEPLIN (LZ) Conceptual Design Report , arXiv:1509.02910 (2015)
2015
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J. Ashenfelter et al., Light collection and pulse-shape discrimination in elongated scintillator cells for the PROSPECT reactor antineutrino experiment , JINST 10 (2015) 11004
2015
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2015
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L.J. Bignell et al., Measurement of Radiation Damage of Water-based Liquid Scintillator and Liquid Scintillator , JINST 10 (2015) P10027
2015
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F.P. An et al., New Measurement of Antineutrino Oscillation with the Full Detector Configuration at Daya Bay PRL , 115 (2015) 111802
2015
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Y. Takemoto, 7 Be solar neutrino observation with KamLAND , Nucl. Part. Phys. Proc. 265-266 (2015) 139–142
2015
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S. Hans et al., Purification of telluric acid for SNO+ neutrinoless double-beta decay search , NIM A795 (2015) 132–139
2015
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G. Boireau et al., Online Monitoring of the Osiris Research Reactor with the Nucifer Neutrino Detector , Phys. Rev. D93 (2016) 112006
2016
Closest in time.
S. Andringa et al., Current Status and Future Prospects of the SNO+ Experiment , Advances in High Energy Physics Vol. 2016 (2016) 6194250
2016
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B.R. Kim et al., Development and Mass Production of a Mixture of LAB- and DIN-based Gadolinium-loaded Liquid Scintillator for the NEOS Short-baseline Neutrino Experiment , Journal of Radioanalytical and Nuclear Chemistry (2016) 1–6
2016
Closest in time.