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arXiv · 2401.17358

Tractable $T$-matix model for reaction processes in muon catalyzed fusion $(dtμ)_{J=v=0} \to \; α+ n + μ+ 17.6\, {\rm MeV} \; \mbox{or} \; (αμ)_{nl} + n +17.6 \,{\rm MeV}$

Abstract

Reaction processes in muon catalyzed fusion ($μ$CF), $(dtμ)_{J=v=0} \to α+ n + μ+ 17.6\,{\rm MeV}\:$ or $ \;(αμ)_{nl} + n + 17.6\,{\rm MeV}$ in the D-T mixture was comprehensively studied by Kamimura, Kino and Yamashita [Phys. Rev. C 107, 034607 (2023)] by solving the $dtμ$-$αnμ$ coupled channel (CC) Schrödinger equation under a boundary condition where the muonic molecule $(dtμ)_{J=v=0}$ was set as the initial state and the outgoing wave was in the $αnμ$ channel. We approximate this CC framework and propose a considerably more tractable model using the $T$-matrix method based on the Lippmann-Schwinger equation. Nuclear interactions adopted in the $T$-matrix model are determined by reproducing the cross section of the reaction $d + t \to α+ n + 17.6\,{\rm MeV}$ at low energies. The cross section of the strong-coupling rearrangement reaction is presented in a simple closed form based on our new model. This $T$-matrix model have reproduced most of the calculated results on the above $μ$CF reaction reported by Kamimura et al. (2023) and is applicable to other $μ$CF systems such as $(ddμ)$, $(ttμ)$, $(dtμ)^*$, $(ddμ)^*$.

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Qian Wu, Masayasu Kamimura. 2024-01-30. Tractable $T$-matix model for reaction processes in muon catalyzed fusion $(dtμ)_{J=v=0} \to \; α+ n + μ+ 17.6\, {\rm MeV} \; \mbox{or} \; (αμ)_{nl} + n +17.6 \,{\rm MeV}$. https://doi.org/10.1103/physrevc.109.054625

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