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Charge exchange of muons in gases: Experimental implications from rate theory

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Abstract

The effects of the charge exchange process on muon spin dynamics have been investigated using a density operator formalism with special interest placed upon the diamagnetic muon and paramagnetic muonium signals observed after thermalization. In the charge exchange region the dynamics of the spin density operator is assumed to be determined by the muonium hyperfine interaction and by electron capture and loss processes for muons. Analytical expressions are obtained for the amplitudes and phases of the diamagnetic muon and paramagnetic muonium signals as a function of the duration of the charge exchange region,t c, which is inversely proportional to the number density of the moderating gas. The theoretical signals exhibit three features which have, as yet, to be experimentally observed, namely: (i) that the amplitudes associated with the muonium Larmor frequency and with the hyperfine frequency are not, in general, equal, (ii) that all the amplitudes are, in general, damped oscillatory functions oft c (temperature/pressure) and (iii) that phase jumps occur when an amplitude decreases to zero and then increases with falling pressure. Fits to the experimental argon data are discussed in light of the above points.

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References

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  2. R.J. Mikula, Ph.D. Thesis, University of British Columbia (1981)

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Turner, R.E., Senba, M. Charge exchange of muons in gases: Experimental implications from rate theory. Hyperfine Interact 18, 697–701 (1984). https://doi.org/10.1007/BF02064888

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  • DOI: https://doi.org/10.1007/BF02064888

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