E. M. Maev
Petersburg Nuclear Physics Institute
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Physics Letters B | 1984
D. V. Balin; E. M. Maev; V.I. Medvedev; G. G. Semenchuk; Yu. V. Smirenin; A. A. Vorobyov; A.A. Vorobyov; Yu. Zalite
Abstract Using an ionization chamber as a sensitive target of deuterium at 91.6 atm pressure the following parameters of the muon catalyzed dd-fusion have been measured at room temperature: the molecule formation rate Λddμ0=(2.76±0.08) × 102s−; the muon sticking coefficient ω dd , 3 He =0.126±0.004 ; the ratio of the yields R= Y( d+d → 3 He+n ) Y( d+d → 3 H+p ) =1.3±0.04 ; and the muon transfer rate Λ d 0 , 4 He =(3.2±0.3)×10 8 s −1 . The presented rates Λddμ0 and Λd0,4He are normalization to the liquid hydrogen density.
Physics Letters B | 1998
P Ackerbauer; D. V. Balin; V.M Baturin; Gerald A. Beer; W.H Breunlich; T. Case; K.M. Crowe; H. Daniel; Jules Deutsch; J Govaerts; Yu. S. Grigoriev; F. J. Hartmann; P. Kammel; R King; B Lauss; E. M. Maev; V.E Markushin; J. Marton; M Mühlbauer; C. Petitjean; Th. Petitjean; G. E. Petrov; R Prieels; W Prymas; W. Schott; G. G. Semenchuk; Yu. V. Smirenin; A.A. Vorobyov; N. I. Voropaev; P. Wojciechowski
In this article we report the results of an experiment performed in 1993 at PSI. The goal was to determine the absolute rate of nuclear muon capture by3He. In the experiment we used a new technique recently developed at Gatchina. As a preliminary result from this experiment we obtainedλc=(1496±3(stat)-3(syst)) s−1.
Hyperfine Interactions | 1993
C. Petitjean; D. V. Balin; V. N. Baturin; P. Baumann; W. H. Breunlich; T. Case; K. M. Crowe; H. Daniel; Yu. S. Grigoriev; F. J. Hartmann; A. I. Ilyin; M. Jeitler; P. Kammel; B. Lauss; K. Lou; E. M. Maev; J. Marton; M. Mühlbauer; G. E. Petrov; W. Prymas; W. Schott; G. G. Semenchuk; Yu. V. Smirenin; A.A. Vorobyov; N. I. Voropaev; P. Wojciechowski; J. Zmeskal
The “sticking” process dtμ → αμ + n, which constitutes the most severe limit to the number of fusions which a muon can catalyze, is reviewed. Many attempts were made to determine by calculations and measurements the probability for initial stickingωs0 (immediately after dtμ fusion) and for final stickingωs (after the αμ came to rest). Previous results based on neutron disappearance rates and on the observation of αμ-X-rays were controversial and also in some disagreement with theory. New data are reported from PSI on direct observation of final sticking, using a setup with the St. Petersburg ionization chamber. These data mark a significant improvement in reliability and may clarify questions concerning previous discrepancies. The new results isωs∼(0.56±0.04)%, lower than the theory predictionωs=(0.65±0.03)%, at medium density.
Hyperfine Interactions | 1999
C. Petitjean; D. V. Balin; W. H. Breunlich; T. Case; K.M. Crowe; H. Daniel; M. P. Faifman; V.A. Ganzha; B. Gartner; F. J. Hartmann; P. Kammel; S.M. Kozlov; B. Lauss; E. M. Maev; V. E. Markushin; Yu.A. Misko; M. Mühlbauer; G. E. Petrov; W. Prymas; G.N. Schapkin; W. Schott; G. G. Semenchuk; Yu. V. Smirenin; V.A. Trofimov; A.A. Vasiliev; A.A. Vorobyov; N. I. Voropaev; J. Zmeskal
AbstractWe present the results of an experiment performed at PSI to investigate muon catalyzed fusion in pure deuterium gas of 5% density (LHD) at temperatures ranging from 28 K to 350 K. Using a new high pressure ionization chamber the reactions dd → n + 3He and dd → p+t were observed with 100% detection efficiency. The rates of dμd formation were measured with the absolute precision of 1% and the μd spin-flip rates with 0.5%. The temperature dependence of molecular formation and spin-flip rates display pronounced resonance structures. A preliminary fit based on the Vesman mechanism of resonant muonic molecule formation was carried out yielding a dd fusion rate of 3.5·108 s-1 and a hfs splitting energy
Hyperfine Interactions | 1993
T. Case; K. Crowe; K. Lou; C. Petitjean; W. H. Breunlich; M. Jeitler; P. Kammel; B. Lauss; J. Marton; W. Prymas; J. Zmeskal; D. V. Balin; V. N. Baturin; Yu. S. Grigoriev; A. I. Ilyin; E. M. Maev; G. E. Petrov; G. G. Semenchuk; Yu. V. Smirenin; A.A. Vorobyov; N. I. Voropaev; P. Baumann; H. Daniel; F. J. Hartmann; M. Mühlbauer; W. Schott; P. Wojciechowski
Hyperfine Interactions | 1996
C. Petitjean; P. Ackerbauer; D. V. Balin; W. H. Breunlich; T. Case; K.M. Crowe; H. Daniel; T. von Egidy; B. Gartner; F. J. Hartmann; P. Kammel; G. Kminek; B. Lauss; E. M. Maev; V. E. Markushin; J. Marton; M. Mühlbauer; G. E. Petrov; W. Prymas; W. Schott; G. G. Semenchuk; Yu. V. Smirenin; A.A. Vorobyov; N. I. Voropaev; J. Zmeskal
\delta \varepsilon _{d\mu d}
Hyperfine Interactions | 1996
A.A. Vorobyov; D. V. Balin; V. N. Baturin; Yu. S. Grigoriev; E. M. Maev; G. E. Petrov; G. G. Semenchuk; Yu. V. Smirenin; N. I. Voropaev; Jules Deutsch; Jan Govaerts; René Prieels; P. Ackerbauer; W. H. Breunlich; P. Kammel; B. Lauss; J. Marton; W. Prymas; J. Egger; C. Petitjean; Th. Petitjean; B. van den Brandt; H. Daniel; F. J. Hartmann; M. Mühlbauer; W. Schott; T. von Egidy; P. Wojciechowski; T. Case; K.M. Crowe
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2002
E. M. Maev; V.A. Andreev; T. Case; K.M. Crowe; P.U Dick; A. Dijksman; J. Egger; A.A. Fetisov; V.A. Ganzha; W.D Herold; F. J. Hartmann; P. Kammel; A.G. Krivchitch; O.E. Maev; C. Petitjean; G. E. Petrov; René Prieels; S.M Sadetsky; G.N. Schapkin; R. Schmidt; G.G. Semenchuk; M Soroka; A.A. Vorobyov; N.I Voropaev
of 24.3 meV, both in good agreement with the theory.
Hyperfine Interactions | 2001
N. I. Voropaev; D. V. Balin; W. H. Breunlich; T. Case; K.M. Crowe; M. P. Faifman; B. Gartner; F. J. Hartmann; P. Kammel; B. Lauss; E. M. Maev; V. E. Markushin; C. Petitjean; G. E. Petrov; G. N. Schapkin; G. G. Semenchuk; A.A. Vorobyov; J. Zmeskal
Starting in 1989 an experiment was run at PSI to directly measure the final sticking probability in muon catalyzed dt fusion. This experiment was based on an “active-target” ionization chamber (IC) built at Gatchina, Russia, and an array of plastic neutron counters. In three runs approximately 5×106 isolated alpha signals were recorded with around one half of these occurring in the inner chamber region where we have more complete understanding of the systematic errors. Particularly from a long run in 1992 we were able to obtain a very clean sticking peak of some 5000 μα events. However, to reach an accurate value of sticking, all systematic effects and several major backgrounds had to be understood in detail. To this end a Monte Carlo code was written to simulate the full electrostatic environment of the IC and to recreate completely each signal type including the actual tritium decay noise from the live experiment. A slightly model dependent value of approx. 0.56±0.04% is obtained for final sticking.
Hyperfine Interactions | 1999
A.A. Vorobyov; P. Ackerbauer; A. Adamczak; V.A. Andreev; D. V. Balin; G. Beer; W. H. Breunlich; T. Case; K. M. Crowe; H. Daniel; Jules Deutsch; P.U. Dick; A. Dijksman; J. Egger; T. von Egidy; M. P. Faifman; A.A. Fetisov; V.A. Ganzha; Jan Govaerts; V.V. Gusev; F. J. Hartmann; W.D. Herold; P. Kammel; A.G. Krivshich; B. Lauss; E. M. Maev; V. E. Markushin; J. Martino; J. Marton; Leonid I. Men'shikov
A new experiment was started at PSI aiming for high-precision and complete studies of dµd fusion in D2, HD and D2/H2 gas mixtures. A high-pressure ionization chamber surrounded by a set of neutron counters is used to observe dd-fusion at temperatures between 25 and 350 K. Here we report preliminary results from the first test run with pure D2 filling.