Reuse & Permissions

It is not necessary to obtain permission to reuse this article or its components as it is available under the terms of the Creative Commons Attribution 4.0 International license. This license permits unrestricted use, distribution, and reproduction in any medium, provided attribution to the author(s) and the published article's title, journal citation, and DOI are maintained. Please note that some figures may have been included with permission from other third parties. It is your responsibility to obtain the proper permission from the rights holder directly for these figures.

Export citation

Export citation

Choose format for download:

Download Citation
  • Open Access

Efficient lattice QCD computation of radiative-leptonic-decay form factors at multiple positive and negative photon virtualities

Davide Giusti1,2, Christopher F. Kane3,4, Christoph Lehner2, Stefan Meinel5, and Amarjit Soni6

Phys. Rev. D 112, 054507 – Published 18 September, 2025

DOI: https://doi.org/10.1103/2pzm-v26v

Abstract

In previous work [D. Giusti, et al., Methods for high-precision determinations of radiative-leptonic decay form factors using lattice QCD, Phys. Rev. D 107, 074507 (2023)], we showed that form factors for radiative leptonic decays of pseudoscalar mesons can be determined efficiently and with high precision from lattice QCD using the “three-dimensional (3D) method,” in which three-point functions are computed for all values of the current insertion time and the time integral is performed at the data-analysis stage. Here, we demonstrate another benefit of the 3D method: the form factors can be extracted for any number of nonzero photon virtualities from the same three-point functions at no extra cost. We present results for the Ds→ℓνγ* vector form factor as a function of photon energy and photon virtuality, for both positive and negative virtuality, for a single ensemble with 340 MeV pion mass and 0.11 fm lattice spacing. In our analysis, we separately consider the two different time orderings and the different quark flavors in the electromagnetic current. We discuss in detail the behavior of the unwanted exponentials contributing to the three-point functions, as well as the choice of fit models and fit ranges used to remove them for various values of the virtuality. While positive photon virtuality is relevant for decays to multiple charged leptons, negative photon virtuality suppresses soft contributions and is of interest in QCD-factorization studies of the form factors.

View figure in article

Physics Subject Headings (PhySH)

Article Text

Supplemental Material

References (65)

  1. D. Giusti, C. F. Kane, C. Lehner, S. Meinel, and A. Soni, Methods for high-precision determinations of radiative-leptonic decay form factors using lattice QCD, Phys. Rev. D 107, 074507 (2023).
  2. D. Atwood, G. Eilam, and A. Soni, Pure leptonic radiative decays B+−,Ds→lνγ and the annihilation graph, Mod. Phys. Lett. A 11, 1061 (1996).
  3. P. Colangelo, F. De Fazio, and G. Nardulli, On the decay mode B−→μ−ν¯μγ, Phys. Lett. B 386, 328 (1996).
  4. C.-H. Chang, J.-P. Cheng, and C.-D. Lu, Radiative leptonic decays of Bc meson, Phys. Lett. B 425, 166 (1998).
  5. C. Q. Geng, C. C. Lih, and W.-M. Zhang, Study of Bs,d→l+l−γ decays, Phys. Rev. D 62, 074017 (2000).
  6. G. A. Chelkov, M. I. Gostkin, and Z. K. Silagadze, Radiative leptonic B decays in the instantaneous Bethe-Salpeter approach, Phys. Rev. D 64, 097503 (2001).
  7. C.-W. Hwang, Radiative leptonic decays of heavy mesons in heavy quark limit, Eur. Phys. J. C 46, 379 (2006).
  8. N. Barik, S. Naimuddin, P. C. Dash, and S. Kar, Radiative leptonic decay: B−→μ−ν¯μγ in a relativistic independent quark model, Phys. Rev. D 77, 014038 (2008).
  9. Y.-L. Shen and G. Li, Radiative D(Ds) decays in the covariant light front approach, Eur. Phys. J. C 73, 2441 (2013).
  10. A. Kozachuk, D. Melikhov, and N. Nikitin, Rare FCNC radiative leptonic Bs,d→γl+l− decays in the standard model, Phys. Rev. D 97, 053007 (2018).
  11. S. Dubnička, A. Z. Dubničková, M. A. Ivanov, A. Liptaj, P. Santorelli, and C. T. Tran, Study of Bs→ℓ+ℓ−γ decays in covariant quark model, Phys. Rev. D 99, 014042 (2019).
  12. D. Guadagnoli, C. Normand, S. Simula, and L. Vittorio, From Ds→γ in lattice QCD to Bs→μμγ at high q2, J. High Energy Phys. 07 (2023) 112.
  13. D. Guadagnoli, C. Normand, S. Simula, and L. Vittorio, Insights on the current semi-leptonic B-decay discrepancies—and how Bs→μ+μ−γ can help, J. High Energy Phys. 10 (2023) 102.
  14. G. P. Korchemsky, D. Pirjol, and T.-M. Yan, Radiative leptonic decays of B mesons in QCD, Phys. Rev. D 61, 114510 (2000).
  15. M. Beneke, G. Buchalla, M. Neubert, and C. T. Sachrajda, QCD factorization for B→ππ decays: Strong phases and CP violation in the heavy quark limit, Phys. Rev. Lett. 83, 1914 (1999).
  16. S. Descotes-Genon and C. T. Sachrajda, Factorization, the light cone distribution amplitude of the B meson and the radiative decay B→γlνl, Nucl. Phys. B650, 356 (2003).
  17. E. Lunghi, D. Pirjol, and D. Wyler, Factorization in leptonic radiative B→γeν decays, Nucl. Phys. B649, 349 (2003).
  18. V. M. Braun and A. Khodjamirian, Soft contribution to B→γℓνℓ and the B-meson distribution amplitude, Phys. Lett. B 718, 1014 (2013).
  19. Y.-M. Wang, Factorization and dispersion relations for radiative leptonic B decay, J. High Energy Phys. 09 (2016) 159.
  20. M. Beneke, V. M. Braun, Y. Ji, and Y.-B. Wei, Radiative leptonic decay B→γℓνℓ with subleading power corrections, J. High Energy Phys. 07 (2018) 154.
  21. Y.-M. Wang and Y.-L. Shen, Subleading-power corrections to the radiative leptonic B→γℓν decay in QCD, J. High Energy Phys. 05 (2018) 184.
  22. Y.-L. Shen, Z.-T. Zou, and Y.-B. Wei, Subleading power corrections to B→γlν decay in PQCD approach, Phys. Rev. D 99, 016004 (2019).
  23. M. Beneke, C. Bobeth, and Y.-M. Wang, Bd,s→γℓℓ¯ decay with an energetic photon, J. High Energy Phys. 12 (2020) 148.
  24. Y.-L. Shen, Y.-B. Wei, X.-C. Zhao, and S.-H. Zhou, Revisiting radiative leptonic B decay, Chin. Phys. C 44, 123106 (2020).
  25. C. Wang, Y.-M. Wang, and Y.-B. Wei, QCD factorization for the four-body leptonic B-meson decays, J. High Energy Phys. 02 (2022) 141.
  26. A. M. Galda, M. Neubert, and X. Wang, Factorization and Sudakov resummation in leptonic radiative B decay—a reappraisal, J. High Energy Phys. 07 (2022) 148.
  27. B.-Y. Cui, Y.-L. Shen, C. Wang, and Y.-B. Wei, QCD factorization for the B→γℓνℓ decay beyond leading power, arXiv:2308.16436.
  28. A. Khodjamirian, G. Stoll, and D. Wyler, Calculation of long distance effects in exclusive weak radiative decays of B meson, Phys. Lett. B 358, 129 (1995).
  29. A. Ali and V. M. Braun, Estimates of the weak annihilation contributions to the decays B→ργ and B→ωγ, Phys. Lett. B 359, 223 (1995).
  30. G. Eilam, I. E. Halperin, and R. R. Mendel, Radiative decay B→lνγ in the light cone QCD approach, Phys. Lett. B 361, 137 (1995).
  31. T. M. Aliev, A. Ozpineci, and M. Savci, Bq→l+l−γ decays in light cone QCD, Phys. Rev. D 55, 7059 (1997).
  32. P. Ball and E. Kou, B→γeν transitions from QCD sum rules on the light cone, J. High Energy Phys. 04 (2003) 029.
  33. T. Janowski, B. Pullin, and R. Zwicky, Charged and neutral B¯u,d,s→γ form factors from light cone sum rules at NLO, J. High Energy Phys. 12 (2021) 008.
  34. J. Bijnens and P. Talavera, π→ℓνγ form-factors at two loop, Nucl. Phys. B489, 387 (1997).
  35. C. Q. Geng, I.-L. Ho, and T. H. Wu, Axial vector form-factors for Kl2γ and πl2γ at O(p6) in chiral perturbation theory, Nucl. Phys. B684, 281 (2004).
  36. V. Mateu and J. Portoles, Form-factors in radiative pion decay, Eur. Phys. J. C 52, 325 (2007).
  37. R. Unterdorfer and H. Pichl, On the radiative pion decay, Eur. Phys. J. C 55, 273 (2008).
  38. V. Cirigliano, G. Ecker, H. Neufeld, A. Pich, and J. Portoles, Kaon decays in the standard model, Rev. Mod. Phys. 84, 399 (2012).
  39. G. Burdman, J. T. Goldman, and D. Wyler, Radiative leptonic decays of heavy mesons, Phys. Rev. D 51, 111 (1995).
  40. M. Saleh Khan, M. Jamil Aslam, A. H. S. Gilani, and Riazuddin, Form-factors and branching ratio for the B→lνγ decay, Eur. Phys. J. C 49, 665 (2007).
  41. D. Guadagnoli, M. Reboud, and R. Zwicky, Bs0→ℓ+ℓ−γ as a test of lepton flavor universality, J. High Energy Phys. 11 (2017) 184.
  42. S. Kürten, M. Zanke, B. Kubis, and D. van Dyk, Dispersion relations for B−→ℓ−ν¯ℓℓ′−ℓ′+ form factors, Phys. Rev. D 107, 053006 (2023).
  43. A. Desiderio et al., First lattice calculation of radiative leptonic decay rates of pseudoscalar mesons, Phys. Rev. D 103, 014502 (2021).
  44. R. Frezzotti, M. Garofalo, V. Lubicz, G. Martinelli, C. T. Sachrajda, F. Sanfilippo, S. Simula, and N. Tantalo, Comparison of lattice QCD+QED predictions for radiative leptonic decays of light mesons with experimental data, Phys. Rev. D 103, 053005 (2021).
  45. R. Frezzotti, N. Tantalo, G. Gagliardi, F. Sanfilippo, S. Simula, V. Lubicz, F. Mazzetti, G. Martinelli, and C. T. Sachrajda, Lattice calculation of the Ds meson radiative form factors over the full kinematical range, Phys. Rev. D 108, 074505 (2023).
  46. R. Frezzotti, N. Tantalo, G. Gagliardi, F. Sanfilippo, S. Simula, V. Lubicz, G. Martinelli, and C. T. Sachrajda, Bs→μ+μ−γ decay rate at large q2 from lattice QCD, Phys. Rev. D 109, 114506 (2024).
  47. R. Di Palma, R. Frezzotti, G. Gagliardi, V. Lubicz, G. Martinelli, C. T. Sachrajda, F. Sanfilippo, S. Simula, and N. Tantalo, Kaon radiative leptonic decay rates from lattice QCD simulations at the physical point, Phys. Rev. D 111, 114523 (2025).
  48. M. Chala, U. Egede, and M. Spannowsky, Searching new physics in rare B-meson decays into multiple muons, Eur. Phys. J. C 79, 431 (2019).
  49. M. Beneke, P. Böer, P. Rigatos, and K. K. Vos, QCD factorization of the four-lepton decay B−→ℓν¯ℓℓ(′)ℓ¯(′), Eur. Phys. J. C 81, 638 (2021).
  50. X.-Y. Tuo, X. Feng, L.-C. Jin, and T. Wang, Lattice QCD calculation of K→ℓνℓℓ′+ℓ′− decay width, Phys. Rev. D 105, 054518 (2022).
  51. G. Gagliardi, F. Sanfilippo, S. Simula, V. Lubicz, F. Mazzetti, G. Martinelli, C. T. Sachrajda, and N. Tantalo, Virtual photon emission in leptonic decays of charged pseudoscalar mesons, Phys. Rev. D 105, 114507 (2022).
  52. M. Hansen, A. Lupo, and N. Tantalo, Extraction of spectral densities from lattice correlators, Phys. Rev. D 99, 094508 (2019).
  53. R. Frezzotti, N. Tantalo, G. Gagliardi, F. Sanfilippo, S. Simula, and V. Lubicz, Spectral-function determination of complex electroweak amplitudes with lattice QCD, Phys. Rev. D 108, 074510 (2023).
  54. A. Khodjamirian, Form-factors of γ*ρ→π and γ*γ→π0 transitions and light cone sum rules, Eur. Phys. J. C 6, 477 (1999).
  55. Y. Aoki et al. (RBC, UKQCD Collaborations), Continuum limit physics from 2+1 flavor domain wall QCD, Phys. Rev. D 83, 074508 (2011).
  56. T. Blum et al. (RBC, UKQCD Collaborations), Domain wall QCD with physical quark masses, Phys. Rev. D 93, 074505 (2016).
  57. C. Kane, C. Lehner, S. Meinel, and A. Soni, Radiative leptonic decays on the lattice, Proc. Sci. LATTICE2019 (2019) 134 [arXiv:1907.00279].
  58. C. Kane, D. Giusti, C. Lehner, S. Meinel, and A. Soni, Controlling unwanted exponentials in lattice calculations of radiative leptonic decays, Proc. Sci. LATTICE2021 (2022) 162 [arXiv:2110.13196].
  59. P. A. Boyle, L. Del Debbio, N. Garron, A. Juttner, A. Soni, J. T. Tsang, and O. Witzel (RBC/UKQCD Collaborations), SU(3)-breaking ratios for D(s) and B(s) mesons, arXiv:1812.08791.
  60. G. C. Donald, C. T. H. Davies, J. Koponen, and G. P. Lepage, Prediction of the Ds* width from a calculation of its radiative decay in full lattice QCD, Phys. Rev. Lett. 112, 212002 (2014).
  61. B. Pullin and R. Zwicky, Radiative decays of heavy-light mesons and the fH,H*,H1(T) decay constants, J. High Energy Phys. 09 (2021) 023.
  62. See Supplemental Material at http://link.aps.org/supplemental/10.1103/2pzm-v26v for files containing the form-factor values and covariance matrices.
  63. Y. Aoki et al., Lattice gauge ensembles and data management, Proc. Sci. LATTICE2024 (2025) 412 [arXiv:2502.08303].
  64. J. Towns, T. Cockerill, M. Dahan, I. Foster, K. Gaither, A. Grimshaw, V. Hazlewood, S. Lathrop, D. Lifka, G. D. Peterson, R. Roskies, J. R. Scott, and N. Wilkins-Diehr, XSEDE: Accelerating scientific discovery, Comput. Sci. Eng. 16, 62 (2014).
  65. T. J. Boerner, S. Deems, T. R. Furlani, S. L. Knuth, and J. Towns, ACCESS: Advancing innovation: NSF’s advanced cyberinfrastructure coordination ecosystem: Services & support, in Practice and Experience in Advanced Research Computing 2023: Computing for the Common Good, PEARC ’23 (Association for Computing Machinery, New York, NY, USA, 2023), pp. 173–176.

Outline

Information

Sign In to Your Journals Account

Filter

Filter

Article Lookup

Enter a citation