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
Summary
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.
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