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Comprehensive study of Λc−→Λ(→pπ)μ−ν¯μ incorporating SMEFT implications and right-handed neutrino

Priyanka Boora1,*, Siddhartha Karmakar2,†,∥, Dinesh Kumar3,‡, and Kavita Lalwani1,§

  • *Contact author: 2020rpy9601@mnit.ac.in
  • †Contact author: siddharthak@iitk.ac.in.
  • ‡Contact author: dinesh@uniraj.ac.in
  • §Contact author: kavita.phy@mnit.ac.in
  • ∥Present address: IIT Kanpur.

Phys. Rev. D 113, 035009 – Published 10 February, 2026

DOI: https://doi.org/10.1103/pg62-rhwv

Abstract

We present a comprehensive analysis of the decay Λc−→Λ(→pπ)μ−ν¯μ within a model-independent effective field theory framework. Previous studies have been restricted to the three-body decay Λc+→Λμ+νμ and considered only left-handed neutrinos within the low-energy effective theory (LEFT). In this work, we extend the analysis to the complete four-body angular distribution for the first time, incorporating the indirect constraints implied by the Standard Model effective field theory (SMEFT) on the LEFT Wilson coefficients. We also include the effects of right-handed neutrino (RHN) operators, enabling a unified treatment of both left- and right-handed neutrino interactions in the c→sμνμ transition. Using the global bounds derived from LEFT observables and their SMEFT correlations, we study the impact of allowed new-physics scenarios on a variety of observables, including differential decay rates, forward-backward asymmetries, polarization asymmetries of the final-state hadron and lepton, and the angular coefficients (M0 to M9) in the 4-body angular distribution. Our analysis reveals significant deviations from the Standard Model in the observables PLΛ and M1 for CRLV and CRRV, and striking T-odd effects in M7 for complex CRLV. These features provide sensitive probes of vector-type new physics, such as leptoquark or right-handed current models. The predicted patterns can be tested in forthcoming measurements at BESIII, LHCb, and Belle II, where polarization-sensitive observables in Λc decays are becoming experimentally accessible.

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