English

On-shell recursion and holomorphic HQET for heavy quark hadronic resonances

High Energy Physics - Phenomenology 2025-03-03 v2

Abstract

We develop a new theoretical framework for the treatment of heavy quark (HQ) resonances within heavy quark effective theory (HQET). This framework uses on-shell recursion techniques to express the resonant amplitude as a product of on-shell subamplitudes, which allows one to employ a form-factor representation of the hadronic matrix elements and to obtain an HQ expansion, but at the price of introducing complex momenta. We construct a generalized ``holomorphic HQET'' onto which such complex-momentum matrix elements can be matched, and we show that PTPT symmetry ensures the Isgur-Wise functions (and the perturbative corrections) become holomorphic functions of the complex recoil parameter with real coefficients. They are thus an analytic continuation of the standard HQET description. This framework admits a HQ hadron (strong decay) width expansion. At second order, we show it is compatible with data for the B1(2)()B_{1(2)}^{(*)} and D1(2)()D_{1(2)}^{(*)} HQ doublets. Taking the Bˉ(D1(1)Dπ)lν\bar{B} \to (D_1^*(1^-) \to D\pi)l\nu system as an example, we compute the holomorphic HQET expansion to first order, as well as the complex-momentum on-shell subamplitudes. A toy numerical study of the resulting differential rates demonstrates that this framework generates HQ resonance lineshapes with large tails, resembling those seen in data.

Keywords

Cite

@article{arxiv.2402.12460,
  title  = {On-shell recursion and holomorphic HQET for heavy quark hadronic resonances},
  author = {Claudio Andrea Manzari and Dean J. Robinson},
  journal= {arXiv preprint arXiv:2402.12460},
  year   = {2025}
}

Comments

68 pages, 6 figures, 1 table

R2 v1 2026-06-28T14:53:39.854Z