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Distinguishing ion dynamics from muon diffusion in muon spin relaxation II; Extension to paramagnetic muons

Kadono, Ryosuke*; Ito, Takashi   

We extend the previously published model that distinguishes between the diffusive motion of diamagnetic muons and the dynamics of ions around the muon in matter, and propose a generalized model for $$paramagnetic$$ $$muons$$ (Mu$$^0$$s, bound states of a muon and an unpaired electron) observed in non-metallic host materials. The new model distinguishes among the independent motion of unpaired electron associated with Mu$$^0$$, the self-diffusive motion of Mu$$^0$$ as single atomic entity, and that of the ions surrounding Mu$$^0$$, where the muon spin relaxation is induced by dynamical fluctuations of the hyperfine (HF) field exerted from the unpaired electron (e.g., due to spin/charge exchange reaction) and/or that of the nuclear hyperfine (NHF) interactions between the unpaired electron and the surrounding ions. We have applied this model to the muonated radicals (Mu$$^0$$s in a polaron state) in conducting polymers, and examined the validity of the interpretations claimed in the earlier literature that the spin relaxation is induced by quasi-one dimensional jump motion of the unpaired electron. The result suggests that experimental support for such a claim is still inadequate and needs to be reexamined, including the possibility of other origins for the fluctuations. It is expected that our model will prove a useful guide for $$mu$$SR studies of various local dynamics involving paramagnetic muon states.

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