Triplet lifetime in gaseous argon

[1]  W. Hager,et al.  and s , 2019, Shallow Water Hydraulics.

[2]  B. Smith,et al.  First Results from the DEAP-3600 Dark Matter Search with Argon at SNOLAB. , 2017, Physical review letters.

[3]  E. Segreto Evidence of delayed light emission of TetraPhenyl Butadiene excited by liquid Argon scintillation light , 2014, 1411.4524.

[4]  Improving photoelectron counting and particle identification in scintillation detectors with Bayesian techniques , 2014, 1408.1914.

[5]  P. Cochat,et al.  Et al , 2008, Archives de pediatrie : organe officiel de la Societe francaise de pediatrie.

[6]  R. Calland,et al.  Argon purification studies and a novel liquid argon re-circulation system , 2011, 1106.5226.

[7]  J. Oertel,et al.  Update on the MiniCLEAN dark matter experiment , 2010, 1403.4842.

[8]  G.Fiorillo,et al.  Oxygen contamination in liquid Argon: combined effects on ionization electron charge and scintillation light , 2008, 0804.1222.

[9]  N. Merbahi,et al.  The study of VUV emissions of Ar*2 excimers using three-photon absorption laser-induced fluorescence , 2009 .

[10]  I. Modena,et al.  Effects of Nitrogen contamination in liquid Argon , 2008, 0804.1217.

[11]  V. Boccone,et al.  Luminescence quenching of the triplet excimer state by air traces in gaseous argon , 2007, 0708.2621.

[12]  S. Incerti,et al.  Geant4 developments and applications , 2006, IEEE Transactions on Nuclear Science.

[13]  T. Bolton,et al.  The Braidwood Reactor Anitneutrino Experiment , 2005 .

[14]  M. Chen The SNO Liquid Scintillator Project , 2005 .

[15]  A. Dell'Acqua,et al.  Geant4 - A simulation toolkit , 2003 .

[16]  A. V. Fedenev,et al.  Novel pathways to the assignment of the third rare gas excimer continua , 2000 .

[17]  A. Kh. Amirov,et al.  Continua of UV radiation and kinetics of slightly ionized noble gases , 1994 .

[18]  W. Wieme,et al.  Semiclassical calculation of the probabilities for collision-induced vibrational transitions in Ar*2 , 1994 .

[19]  NUCLEAR PHYSICS B , 1994 .

[20]  Wieser,et al.  Third excimer continuum of argon excited by a heavy-ion beam. , 1991, Physical review. A, Atomic, molecular, and optical physics.

[21]  F. Hambsch,et al.  Fast decay components in the scintillation gases Ar, ArN2, Xe, and HeXe excited by heavy-ion impact , 1987 .

[22]  A. Hitachi,et al.  Effect of ionization density on the time dependence of luminescence from liquid argon and xenon , 1983 .

[23]  B. M. Smirnov REVIEWS OF TOPICAL PROBLEMS: Excimer molecules , 1983 .

[24]  J. Galy,et al.  Spectroscopic and kinetic analysis of the VUV emissions of argon and argon-xenon mixtures. I. Study of pure argon , 1982 .

[25]  R. F. Firestone,et al.  Bimolecular and ‘‘three‐body’’ quenching of paschen‐1s argon atoms by N2, H2, and O2 and effects of N2 on the yield of the first triplet argon excimer , 1981 .

[26]  M. Kogoma,et al.  Energy transfer of argon excited diatomic molecules , 1979 .

[27]  M. J. Carvalho,et al.  Luminescence decay in condensed argon under high energy excitation , 1979 .

[28]  J. Velazco,et al.  Rate constants and quenching mechanisms for the metastable states of argon, krypton, and xenon , 1978 .

[29]  Y. Kondo,et al.  Observation of relaxed exciton states in condensed argon , 1977 .

[30]  G. K. Walters,et al.  Electronic energy transfer in argon–xenon mixtures excited by electron bombardment , 1977 .

[31]  G. K. Walters,et al.  Production mechanisms and radiative lifetimes of argon and xenon molecules emitting in the ultraviolet , 1974 .

[32]  G. S. Hurst,et al.  Time-Dependent Study of Vacuum-Ultraviolet Emission in Argon , 1972 .