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1901
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M. J. Dolinski, A. W. Poon, and W. Rodejohann, “Neutrinoless Double-Beta Decay: Status and Prospects,” Ann. Rev. Nucl. Part. Sci. 69
1902
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S. I. Alvis et al. (Majorana), “A Search for Neutrinoless Double-Beta Decay in 76
1902
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C. D. Kreisch, F.-Y. Cyr-Racine, and O. Doré, “Neutrino puzzle: Anomalies, interactions, and cosmological tensions,” Phys. Rev. D 101
1902
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A. G. Riess, S. Casertano, W. Yuan, L. M. Macri, and D. Scolnic, “Large Magellanic Cloud Cepheid Standards Provide a 1% Foundation for the Determination of the Hubble Constant and Stronger Evidence for Physics beyond Λ \Lambda CDM,” Astrophys. J. 876
1903
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K. Altenmüller et al. (KATRIN), “Gamma-induced background in the KATRIN main spectrometer,” Eur. Phys. J. C 79
1903
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R. S. L. Hansen, M. Lindner, and O. Scholer, “Timing the neutrino signal of a Galactic supernova,” Phys. Rev. D 101
1904
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D. A. Bryman and R. Shrock, “Improved Constraints on Sterile Neutrinos in the MeV to GeV Mass Range,” Phys. Rev. D 100
1904
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G. Anton et al. (EXO-200), “Search for Neutrinoless Double- β \beta Decay with the Complete EXO-200 Dataset,” Phys. Rev. Lett. 123
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S. Roy Choudhury and S. Hannestad, “Updated results on neutrino mass and mass hierarchy from cosmology with Planck 2018 likelihoods,” J. Cosmol. Astrop. Phys. 07
1907
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K. Abazajian et al., “CMB-S4 Decadal Survey APC White Paper,” Bull. Am. Astron. Soc. 51
1908
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M. Aker et al. (KATRIN), “Improved Upper Limit on the Neutrino Mass from a Direct Kinematic Method by KATRIN,” Phys. Rev. Lett. 123
1909
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D. A. Bryman and R. Shrock, “Constraints on Sterile Neutrinos in the MeV to GeV Mass Range,” Phys. Rev. D 100
1909
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T. Brunst et al., “Measurements with a TRISTAN prototype detector system at the “Troitsk nu-mass” experiment in integral and differential mode,” J. Instr. 14
1909
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A. Giuliani, J. J. Gomez Cadenas, S. Pascoli, E. Previtali, R. Saakyan, K. Schäffner, and S. Schönert (APPEC Committee), “Double Beta Decay APPEC Committee Report,” (2019), eprint 1910.04688
1910
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D. Becker et al. (HOLMES), “Working principle and demonstrator of microwave-multiplexing for the HOLMES experiment microcalorimeters,” J. Instr. 14
1910
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1912
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M. M. Ivanov, M. Simonović, and M. Zaldarriaga, “Cosmological Parameters and Neutrino Masses from the Final Planck and Full-Shape BOSS Data,” Phys. Rev. D 101
1912
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P. D. Bolton, F. F. Deppisch, and P. Bhupal Dev, “Neutrinoless double beta decay versus other probes of heavy sterile neutrinos,” JHEP 03
1912
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1930
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1933
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E. Fermi, “Tentativo di una teoria dell’emissione dei raggi beta,” Ric. Sci. 4
1933
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L. M. Brown, “The idea of the neutrino,” Physics Today 31
1945
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S. C. Curran, J. Angus, and A. L. Cockcroft, “Beta-Spectrum of Tritium,” Nature 162
1948
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G. C. Hanna and B. Pontecorvo, “The β \beta -spectrum of H 3 ,” Phys. Rev. 75
1949
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S. C. Curran, J. Angus, and A. L. Cockcroft, “The Beta-Spectrum of Tritium,” Phys. Rev. 76
1949
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E. B. Nelson and J. E. Nafe, “The hyperfine structure of tritium,” Phys. Rev. 75
1949
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1951
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L. M. Langer and R. J. Moffat, “The Beta-Spectrum of Tritium and the Mass of the Neutrino,” Phys. Rev. 88
1952
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F. Reines and C. L. Cowan, “Detection of the free neutrino,” Phys. Rev. 92
1953
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D. R. Hamilton, W. P. Alford, and L. Gross, “Upper Limits on the Neutrino Mass from the Tritium Beta Spectrum,” Phys. Rev. 92
1953
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J. S. Levinger, “Effects of radioactive disintegrations on inner electrons of the atom,” Phys. Rev. 90
1953
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C. L. Cowan, F. Reines, F. B. Harrison, H. W. Kruse, and A. D. McGuire, “Detection of the free neutrino: A Confirmation,” Science 124
1956
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M. Cantwell, “Molecular excitation in beta decay,” Phys. Rev. 101
1956
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A. H. Snell, F. Pleasanton, and H. E. Leming, “Molecular dissociation following radioactive decay: Tritium hydride,” J. Inorg. Nucl. Chem. 5
1957
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A. G. Prodell and P. Kusch, “Hyperfine structure of tritium in the ground state,” Phys. Rev. 106
1957
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S. Wexler, “Dissociation of TH and T 2 by β \beta -decay,” J. Inorg. Nucl. Chem. 10
1959
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G. Danby, J. M. Gaillard, K. A. Goulianos, L. M. Lederman, N. B. Mistry, M. Schwartz, and J. Steinberger, “Observation of High-Energy Neutrino Reactions and the Existence of Two Kinds of Neutrinos,” Phys. Rev. Lett. 9
1962
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E. Fermi and E. Segrè, Enrico Fermi, Collected Papers , vol. 1 (University of Chicago Press, Chicago, 1962)
1962
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S. Weinberg, “Universal neutrino degeneracy,” Phys. Rev. 128
1962
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B. J. Wood and H. Wise, “The kinetics of hydrogen atom recombination on Pyrex glass and fused quartz,” J. Phys. Chem. 66
1962
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R. L. Brodzinski and D. C. Conway, “Decay of rhenium-187,” Phys. Rev. 138
1965
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E. Huster and H. Verbeek, “Das ß-spektrum des natürlichen rhenium 187,” Zeitschrift für Physik 203
1967
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B. S. Mathur, S. B. Crampton, D. Kleppner, and N. F. Ramsey, “Hyperfine Separation of Tritium,” Phys. Rev. 158
1967
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F. L. Wilson, “Fermi’s Theory of Beta Decay,” Am. J. Phys. 36
1968
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P. K. Hopke, J. S. Evans, and R. A. Naumann, “Decay of ho 163 {\mathrm{ho}}^{163} ,” Phys. Rev. 171
1968
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R. C. Salgo and H. H. Staub, “Re-determination of the β \beta -energy of tritium and its relation to the neutrino rest mass and the Gamow-Teller matrix element,” Nucl. Phys. A 138
1969
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R. Daris and C. St-Pierre, “Beta decay of tritium,” Nucl. Phys. A 138
1969
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K.-E. Bergkvist, “On some atomic effects in the tritium β \beta -spectrum,” Physica Scripta 4
1971
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B. Röde and H. Daniel, “Measurement of the 3 H beta-ray spectrum and determination of an upper limit for the electron-antineutrino rest mass,” Lett. Nuovo Cimento 5
1972
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E. Tret’yakov, “Toroidal beta spectrometer with high resolution,” Izvest. Akad. Nauk. SSSR Ser. Fiz. 39
1975
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T. Hsu and J. L. Hirshfield, “Electrostatic energy analyzer using a nonuniform axial magnetic field,” Review of Scientific Instruments 47
1976
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P. Minkowski, “ μ → e γ \mu\to e\gamma at a Rate of One Out of 10 9 10^{9} Muon Decays?,” Phys. Lett. B 67
1977
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M. Galeazzi, F. Fontanelli, F. Gatti, and S. Vitale, “Limits on the existence of heavy neutrinos in the range 50–1000 ev from the study of the Re 187 {}^{187}\mathrm{Re} beta decay,” Phys. Rev. Lett. 86
1978
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M. Gell-Mann, P. Ramond, and R. Slansky, “Complex Spinors and Unified Theories,” Conf. Proc. C 790927
1979
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T. Yanagida, “Horizontal gauge symmetry and masses of neutrinos,” Conf. Proc. C 7902131
1979
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S. L. Glashow, “The Future of Elementary Particle Physics,” NATO Sci. Ser. B 61
1980
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R. N. Mohapatra and G. Senjanovic, “Neutrino Mass and Spontaneous Parity Nonconservation,” Phys. Rev. Lett. 44
1980
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J. Schechter and J. W. F. Valle, “Neutrino Masses in SU(2) x U(1) Theories,” Phys. Rev. D 22
1980
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V. A. Lyubimov, E. G. Novikov, V. Z. Nozik, E. F. Tretyakov, and V. S. Kosik, “An Estimate of the electron-Neutrino Mass from the beta Spectrum of Tritium in the Valine Molecule,” Phys. Lett. B 94
1980
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G. Beamson, H. Q. Porter, and D. W. Turner, “The collimating and magnifying properties of a superconducting field photoelectron spectrometer,” J. Phys. E: Scientific Instruments 13
1980
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J. J. Simpson, “Measurement of the β \beta -energy spectrum of H 3 {}^{3}\mathrm{H} to determine the antineutrino mass,” Phys. Rev. D 23
1981
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V. A. Lyubimov et al., “Estimation of the neutrino rest mass from measurements of the tritium β \beta spectrum,” Sov. Phys. JETP 54
1981
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C. L. Bennett, A. L. Hallin, R. A. Naumann, P. T. Springer, M. S. Witherell, R. E. Chrien, P. A. Baisden, and D. H. Sisson, “The X-ray spectrum following 163
1981
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A. De Rújula, “A new way to measure neutrino masses,” Nucl. Phys. B188
1981
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J. Slevin and W. Stirling, “Radio frequency atomic hydrogen beam source,” Rev. Sci. Instrum. 52
1981
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1982
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H. Behrens and W. Bühring, Electron radial wave functions and nuclear betadecay (Clarendon Press ; Oxford University Press, Oxford [ [ Oxfordshire ] ] ; New York, 1982), ISBN 019851297X 9780198512974
1982
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A. De Rújula and M. Lusignoli, “Calorimetric measurements of 163-holmium decay as tools to determine the electron neutrino mass,” Phys. Lett. B 118
1982
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R. G. H. Robertson, T. J. Bowles, J. C. Browne, T. H. Burritt, J. A. Helffrich, D. A. Knapp, M. P. Maley, M. L. Stelts, and J. F. Wilkerson, Tech. Rep. LA-UR 82-1728 Rev. 3, Los Alamos National Laboratory (1982)
1982
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J. T. M. Walraven and I. F. Silvera, “Helium‐-temperature beam source of atomic hydrogen,” Rev. Sci. Instrum. 53
1982
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P. Kruit and F. H. Read, “Magnetic field paralleliser for 2 π \pi electron-spectrometer and electron-image magnifier,” J. Phys. E: Scientific Instruments 16
1983
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P. A. Baisden, D. H. Sisson, S. Niemeyer, B. Hudson, C. L. Bennett, and R. A. Naumann, “Measurement of the half-life of Ho 163 {}^{163}\mathrm{Ho} ,” Phys. Rev. C 28
1983
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J. M. Irvine and R. Humphreys, “Neutrino masses and the cosmic-neutrino background,” J. Phys. G: 9
1983
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R. Williams and S. Koonin, “Atomic final-state interactions in tritium decay,” Phys. Rev. C 27
1983
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W. W. Repko and C.-e. Wu, “Radiative corrections to the end point of the tritium β \beta decay spectrum,” Phys. Rev. C 28
1983
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D. E. Pritchard, “Cooling neutral atoms in a magnetic trap for precision spectroscopy,” Phys. Rev. Lett. 51
1983
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D. McCammon, M. Juda, D. D. Reeder, R. L. Kelley, S. H. Moseley, and A. E. Szymkowiak, in CABLE 1984, Proceedings, Neutrino Mass and Low-Energy Weak Interactions (1984), pp. 329–343
1984
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S. Boris, A. Golutvin, L. Laptin, V. Lyubimov, V. Nagovitsyn, E. Novikov, V. Nozik, V. Soloshenko, I. Tikhomirov, and E. Tretyakov, “The neutrino mass from the tritium beta spectrum in a valine,” Phys. Lett. B 159
1985
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F. X. Hartmann and R. A. Naumann, “Observation of n n and m m orbital-electron capture in the decay of Ho 163 {}^{163}\mathrm{Ho} ,” Phys. Rev. C 31
1985
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1985
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J. J. Simpson, “Evidence of Heavy Neutrino Emission in beta Decay,” Phys. Rev. Lett. 54
1985
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O. Fackler, B. Jeziorski, W. Kołos, H. J. Monkhorst, and K. Szalewicz, “Accurate theoretical β \beta -decay energy spectrum of the tritium molecule and its neutrino mass dependence,” Phys. Rev. Lett. 55
1985
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M. Fritschi et al., “An upper limit for the mass of ν ¯ e \bar{\nu}_{e} from tritium β \beta -decay,” Phys. Lett. B 173
1986
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1986
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1986
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H. F. Hess, “Evaporative cooling of magnetically trapped and compressed spin-polarized hydrogen,” Phys. Rev. B 34
1986
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S. D. Boris et al., “Neutrino Mass From the Beta Spectrum in the Decay of Tritium,” Phys. Rev. Lett. 58
1987
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J. F. Wilkerson et al., “Limit on ν ¯ e \bar{\nu}_{e} mass from free-molecular-tritium beta decay,” Phys. Rev. Lett. 58
1987
Cited alongside, same era.
P. T. Springer, C. L. Bennett, and P. A. Baisden, “Measurement of the neutrino mass using the inner bremsstrahlung emitted in the electron-capture decay of Ho 163 {}^{163}\mathrm{Ho} ,” Phys. Rev. A 35
1987
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M. B. Shah, D. S. Elliot, and H. B. Gilbody, “Pulsed crossed-beam study of the ionisation of atomic hydrogen by electron impact,” J. Phys. B: At. Mol. Phys. 20
1987
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R. G. H. Robertson and D. A. Knapp, “Direct measurements of neutrino mass,” Annu. Rev. Nucl. Part. Sci. 38
1988
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H. Kawakami et al., “Neutrino Mass and End Point Energy of 3
1988
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T. Sekiguchi and T. Takahashi, “Cosmological bound on neutrino masses in the light of H 0 H_{0} tension,” (2020), eprint 2011.14481
2011
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J. A. Formaggio and J. Barrett, “Resolving the Reactor Neutrino Anomaly with the KATRIN Neutrino Experiment,” Phys. Lett. B 706
2011
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M. Aker, K. Altenmueller, A. Beglarian, J. Behrens, A. Berlev, U. Besserer, B. Bieringer, K. Blaum, F. Block, B. Bornschein, et al., “Bound on 3+1 active-sterile neutrino mixing from the first four-week science run of KATRIN,” (2020), Phys. Rev. Lett. (in press), eprint 2011.05087
2011
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V. N. Aseev et al. (Troitsk Collaboration), “An upper limit on electron antineutrino mass from Troitsk experiment,” Phys. Rev. D 84
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1989
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1991
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1991
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R. G. H. Robertson, T. J. Bowles, G. J. Stephenson, D. L. Wark, J. F. Wilkerson, and D. A. Knapp, “Limit on ν ¯ e \bar{\nu}_{e} mass from observation of the β \beta decay of molecular tritium,” Phys. Rev. Lett. 67
1991
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1991
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2011
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R. Dvornický, K. Muto, F. Šimkovic, and A. Faessler, “Absolute mass of neutrinos and the first unique forbidden β \beta decay of Re 187 {}^{187}\mathrm{Re} ,” Phys. Rev. C 83
2011
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G. Steigman, “Neutrinos and Big Bang Nucleosynthesis,” Adv. High Energy Phys. 2012
2012
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R. S. L. Hansen, S. Shalgar, and I. Tamborra, “Neutrino flavor mixing breaks isotropy in the early universe,” (2020a), eprint 2012.03948
2012
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A. Esmaili and O. L. Peres, “KATRIN Sensitivity to Sterile Neutrino Mass in the Shadow of Lightest Neutrino Mass,” Phys. Rev. D 85
2012
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G. Drexlin, V. Hannen, S. Mertens, and C. Weinheimer, “Current direct neutrino mass experiments,” Adv. High Energy Phys. 2013
2013
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A. de Gouvêa et al. (Intensity Frontier Neutrino Working Group), in Community Summer Study 2013: Snowmass on the Mississippi (2013), eprint 1310.4340
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S. Mertens et al., “Background due to stored electrons following nuclear decays in the KATRIN spectrometers and its impact on the neutrino mass sensitivity,” Astropart. Phys. 41
2013
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2013
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A. I. Belesev, A. I. Berlev, E. V. Geraskin, A. A. Golubev, N. A. Likhovid, A. A. Nozik, V. S. Pantuev, V. I. Parfenov, and A. K. Skasyrskaya, “The search for an additional neutrino mass eigenstate in the 2–100 eV region from “Troitsk nu-mass” data: a detailed analysis,” J. Phys. G: 41
2013
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C. Kraus, A. Singer, K. Valerius, and C. Weinheimer, “Limit on sterile neutrino contribution from the Mainz Neutrino Mass Experiment,” Eur. Phys. J. C 73
2013
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S. Betts, W. R. Blanchard, R. H. Carnevale, C. Chang, C. Chen, S. Chidzik, L. Ciebiera, P. Cloessner, A. Cocco, A. Cohen, et al., “Development of a Relic Neutrino Detection Experiment at PTOLEMY: Princeton Tritium Observatory for Light, Early-Universe, Massive-Neutrino Yield,” (2013), eprint 1307.4738
2013
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A. De Rújula., “Two old ways to measure the electron-neutrino mass,” (2013), eprint 1305.4857
2013
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2014
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A. Nucciotti, “Statistical sensitivity of 163-Ho electron capture neutrino mass experiments,” Eur. Phys. J. C (2014), in press, eprint 1405.5060
2014
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C. B. Lucas, Atomic and Molecular Beams – Production and Collimation (CRC Press, Taylor and Francis Group, 2014), ISBN ISBN-13: 978-1-4665-6106-9 (eBook - PDF)
2014
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C. Amole et al. (ALPHA), “The ALPHA antihydrogen trapping apparatus,” Nucl. Instrum. Meth. A 735
2014
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Y. Abe et al. (Double Chooz), “Improved measurements of the neutrino mixing angle θ 13 \theta_{13} with the Double Chooz detector,” JHEP 10
2015
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R. Arnold, C. Augier, J. D. Baker, A. S. Barabash, A. Basharina-Freshville, S. Blondel, S. Blot, M. Bongrand, V. Brudanin, J. Busto, et al. (NEMO-3 Collaboration), “Results of the search for neutrinoless double- β \beta decay in Mo 100 {}^{100}\mathrm{Mo} with the NEMO-3 experiment,” Phys. Rev. D 92
2015
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H. Pas and W. Rodejohann, “Neutrinoless Double Beta Decay,” New J. Phys. 17
2015
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F. Rossi-Torres, M. Guzzo, and E. Kemp, “Boundaries on Neutrino Mass from Supernovae Neutronization Burst by Liquid Argon Experiments,” (2015), eprint 1501.00456
2015
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A. Kobach and S. Dobbs, “Heavy Neutrinos and the Kinematics of Tau Decays,” Phys. Rev. D 91
2015
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L. I. Bodine, D. S. Parno, and R. G. H. Robertson, “Assessment of molecular effects on neutrino mass measurements from tritium beta decay,” Phys. Rev. C 91
2015
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2015
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E. G. Myers, A. Wagner, H. Kracke, and B. A. Wesson, “Atomic Masses of Tritium and Helium-3,” Phys. Rev. Lett. 114
2015
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S. Eliseev, K. Blaum, M. Block, S. Chenmarev, H. Dorrer, C. E. Düllmann, C. Enss, P. E. Filianin, L. Gastaldo, M. Goncharov, et al., “Direct Measurement of the Mass Difference of Ho 163 {}^{163}\mathrm{Ho} and Dy 163 {}^{163}\mathrm{Dy} Solves the Q-Value Puzzle for the Neutrino Mass Determination,” Phys. Rev. Lett. 115
2015
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D. N. Abdurashitov et al., “The current status of “Troitsk nu-mass” experiment in search for sterile neutrino,” J. Instr. 10
2015
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S. Mertens, T. Lasserre, S. Groh, G. Drexlin, F. Glueck, A. Huber, A. Poon, M. Steidl, N. Steinbrink, and C. Weinheimer, “Sensitivity of Next-Generation Tritium Beta-Decay Experiments for keV-Scale Sterile Neutrinos,” J. Cosmol. Astrop. Phys. 02
2015
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R. G. H. Robertson, “Examination of the calorimetric spectrum to determine the neutrino mass in low-energy electron capture decay,” Phys. Rev. C 91
2015
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A. Faessler and F. Simkovic, “Improved Description of One- and Two-Hole States after Electron Capture in 163 Holmium and the Determination of the Neutrino Mass,” Phys. Rev. C 91
2015
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J. F. Amsbaugh et al., “Focal-plane detector system for the KATRIN experiment,” Nucl. Instrum. Meth. A 778
2015
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D. M. Asner, R. F. Bradley, L. de Viveiros, P. J. Doe, J. L. Fernandes, M. Fertl, et al. (Project 8), “Single electron detection and spectroscopy via relativistic cyclotron radiation,” Phys. Rev. Lett. 114
2015
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D. L. Furse, Ph.D. thesis, Massachusetts Institute of Technology (2015), URL https://dspace.mit.edu/handle/1721.1/99313
2015
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J. Choi et al. (RENO), “Observation of Energy and Baseline Dependent Reactor Antineutrino Disappearance in the RENO Experiment,” Phys. Rev. Lett. 116
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