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arXiv · 1112.0237

Factorization of Heavy-to-Light Baryonic Transitions in SCET

Abstract

In the framework of the soft-collinear effective theory, we demonstrate that the leading-power heavy-to-light baryonic form factors at large recoil obey the heavy quark and large energy symmetries. Symmetry breaking effects are suppressed by $Λ/m_{b}$ or $Λ/E$, where $Λ$ is the hadronic scale, $m_b$ is the $b$ quark mass and $E\sim m_b$ is the energy of light baryon in the final state. At leading order, the leading power baryonic form factor $ξ_{Λ,p}(E)$, in which two hard-collinear gluons are exchanged in the baryon constituents, can factorize into the soft and collinear matrix elements convoluted with a hard-kernel of order $α_s^2$. Including the energy release dependence, we derive the scaling law $ξ_{Λ,p}(E)\sim Λ^2 /E^2$. We also find that this form factor $ξ_Λ(E)$ is numerically smaller than the form factor governed by soft processes, although the latter is formally power-suppressed.

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BibTeXRIS

Wei Wang. 2012-02-08. Factorization of Heavy-to-Light Baryonic Transitions in SCET. https://doi.org/10.1016/j.physletb.2012.01.036

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