Charge Asymmetry of Muons Generated in a Muon Generator from Ultra-Dense Hydrogen D(0) and p(0)

被引:2
作者
Holmlid, Leif [1 ]
机构
[1] Univ Gothenburg, Dept Chem & Mol Biol, SE-41296 Gothenburg, Sweden
关键词
ultra-dense hydrogen; laser-induced processes; MeV particles; mesons; LASER-INDUCED ANNIHILATION; NUCLEAR-REACTIONS; CATALYZED FUSION; ENERGY; TRANSITION;
D O I
10.3390/particles6010010
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Laser-induced nuclear reactions in ultra-dense hydrogen H(0) (review in Physica Scripta 2019) create mesons (kaons and pions). These mesons decay mainly to muons. The muons created are useful (patented source) for the muon-induced fusion process. The sign of the muons from the source depends on the initial baryons used. With D(0) (ultra-dense deuterium) the source produces mainly positive muons and with p(0) (ultra-dense protium) the source produces mainly negative muons. Negative muons are required for muon-induced fusion. This charge asymmetry was reported earlier, and has now been confirmed by experiments with a coil current transformer as the beam detector. The current coil detector would give no signal from the muons if charge symmetry existed. The charge asymmetry could indicate unknown processes, for example, caused by the different annihilation processes in D(0) and p(0). The conclusions of a new analysis of the results are presented here. Using D(0) in the muon source, the asymmetry is likely due to the capture of mu(-) in D atoms and D-2 molecules. This leads to emission of excess mu(+) from D(0). With p(0) in the muon source, the capture rate of mu(-) is lower than in D(0). The emitted number of mu(+) will be decreased by the reaction between mu(+) and the surrounding abundant electrons, forming neutral muonium particles. This effect decreases the amount of emitted mu(+) for both p(0) and D(0), and it is proposed to be the main reason for a larger fraction of emitted mu(-) in the case of p(0). Thus, there is no dominant emission of negative muons which would violate charge conservation.
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页码:188 / 197
页数:10
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