Effective theory tower for $μ\rightarrow e$ conversion

Fuente: arXiv
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Main Authors: Haxton, Wick, McElvain, Kenneth, Menzo, Tony, Rule, Evan, Zupan, Jure
Format: Preprint
Published: 2024
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author Haxton, Wick
McElvain, Kenneth
Menzo, Tony
Rule, Evan
Zupan, Jure
author_facet Haxton, Wick
McElvain, Kenneth
Menzo, Tony
Rule, Evan
Zupan, Jure
contents We present theoretical predictions for $μ\rightarrow e$ conversion rates using a tower of effective field theories connecting the UV to nuclear physics scales. The interactions in nuclei are described using a recently developed nonrelativistic effective theory (NRET) that organizes contributions according to bound nucleon and muon velocities, $\vec{v}_N$ and $\vec{v}_μ$, with $|\vec{v}_N| > |\vec{v}_μ|$. To facilitate the top-down matching, we enlarge the set of Lorentz covariant nucleon-level interactions mapped onto the NRET operators to include those mediated by tensor interactions, in addition to the scalar and vector interactions already considered previously, and then match NRET nonperturbatively onto the Weak Effective Theory (WET). At the scale $μ\approx 2$ GeV WET is formulated in terms of $u$, $d$, $s$ quarks, gluons and photons as the light degrees of freedom, along with the flavor-violating leptonic current. We retain contributions from WET operators up to dimension 7, which requires the full set of 26 NRET operators. The results are encoded in the open-source Python- and Mathematica-based software suite MuonBridge, which we make available to the theoretical and experimental communities interested in $μ\rightarrow e$ conversion.
format Preprint
id arxiv_https___arxiv_org_abs_2406_13818
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Effective theory tower for $μ\rightarrow e$ conversion
Haxton, Wick
McElvain, Kenneth
Menzo, Tony
Rule, Evan
Zupan, Jure
High Energy Physics - Phenomenology
High Energy Physics - Experiment
Nuclear Theory
We present theoretical predictions for $μ\rightarrow e$ conversion rates using a tower of effective field theories connecting the UV to nuclear physics scales. The interactions in nuclei are described using a recently developed nonrelativistic effective theory (NRET) that organizes contributions according to bound nucleon and muon velocities, $\vec{v}_N$ and $\vec{v}_μ$, with $|\vec{v}_N| > |\vec{v}_μ|$. To facilitate the top-down matching, we enlarge the set of Lorentz covariant nucleon-level interactions mapped onto the NRET operators to include those mediated by tensor interactions, in addition to the scalar and vector interactions already considered previously, and then match NRET nonperturbatively onto the Weak Effective Theory (WET). At the scale $μ\approx 2$ GeV WET is formulated in terms of $u$, $d$, $s$ quarks, gluons and photons as the light degrees of freedom, along with the flavor-violating leptonic current. We retain contributions from WET operators up to dimension 7, which requires the full set of 26 NRET operators. The results are encoded in the open-source Python- and Mathematica-based software suite MuonBridge, which we make available to the theoretical and experimental communities interested in $μ\rightarrow e$ conversion.
title Effective theory tower for $μ\rightarrow e$ conversion
topic High Energy Physics - Phenomenology
High Energy Physics - Experiment
Nuclear Theory
url https://arxiv.org/abs/2406.13818