Abstract

Within the framework of nonrelativistic QCD (NRQCD) factorization formalism, we compute the helicity amplitude as well as the decay width of $\eta_{Q2}$ ($Q=c,b$) electromagnetic decay into two photons up to next-to-next-to-leading order (NNLO) in $\alpha_s$ expansion. For the first time, we verify the validity of NRQCD factorization for the D-wave quarkonium decay at NNLO. We find that the $\mathcal{O}(\alpha_s)$ and $\mathcal{O}(\alpha_s^2)$ corrections to the helicity amplitude are negative and moderate, nevertheless both corrections combine to suppress the leading-order prediction for the decay width significantly. By approximating the total decay width of $\eta_{Q2}$ as the sum of those for the hadronic decay and the electric $E1$ transition, we obtain the branching ratios ${\rm Br}(\eta_{c2}\to 2\gamma)\approx 5\times10^{-6}$ and ${\rm Br}(\eta_{b2}\to 2\gamma)\approx 4\times10^{-7}$. To explore the potential measurement on $\eta_{Q2}$, we further evaluate the production cross section of $\eta_{Q2}$ at LHCb at the lowest order in $\alpha_s$ expansion. With the kinematic constraint on the longitudinal rapidity $4.5>y>2$ and transverse momentum $P_T>(2-4)m_Q$ for $\eta_{Q2}$, we find the cross section can reach $2-50$ nb for $\eta_{c2}$, and $1-22$ pb for $\eta_{b2}$. Considering the integrated luminosity $\mathcal{L}=10\, {\rm fb}^{-1}$ at $\sqrt{s}=7$ TeV and $\sqrt{s}=13$ TeV, we estimate that there are several hundreds events of $pp\to \eta_{c2}\to 2\gamma$. Since the background is relatively clean, it is promising to reconstruct $\eta_{c2}$ through its electromagnetic decay. On the contrary, due to small branching ratio and production cross section, it is quite challenging to detect $\eta_{b2}\to 2\gamma$ at LHCb.

Highlights

  • Heavy quarkonium, as a multiscale system, is an ideal laboratory for testing the interplay between perturbative and nonperturbative QCD

  • OðαsÞ and Oðα2s Þ corrections to the helicity amplitude are negative and moderate, both corrections combine to suppress the leading-order prediction for the decay width significantly

  • Applying the nonrelativisitc QCD (NRQCD) factorization formalism, we evaluate the ηQ2 electromagnetic decay into double photons up to Oðα2sÞ radiative corrections

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Summary

INTRODUCTION

As a multiscale system, is an ideal laboratory for testing the interplay between perturbative and nonperturbative QCD. Based on the nonrelativisitc QCD (NRQCD) factorization formalism [18], the inclusive ηc production in B decay was evaluated and proposed to probe ηc through this channel [19,20]. NRQCD factorization formalism is widely employed to tackle heavy quarkonium decay and production Within this framework, the production cross section or decay width can be systematically disentangled the short-distance and long-distance effects, formalized by a double expansion in powers of heavy quark velocity vQ and strong coupling constant αs. There is a remarkable progress in deducing the higher-order perturbative corrections for various quarkonium decay and production processes [25,26,27,28,29,30,31,32,33,34,35,36,37,38,39,40,41] It has been found even though the OðαsÞ corrections to the charmonium electromagnetic decay are moderate, the Oðα2sÞ corrections can be considerable.

THEORETICAL FORMULA FOR THE DECAY WIDTH
NRQCD FACTORIZATION FORMALISM FOR THE HELICITY AMPLITUDE
SDC UP TO NNLO
PHENOMENOLOGY
SUMMARY
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