- Open Access
Gravitational form factors of the nucleon in the Skyrme model based on scale-invariant chiral perturbation theory
Phys. Rev. D 112, 054048 – Published 29 September, 2025
DOI: https://doi.org/10.1103/gzj5-7bln
Abstract
We investigate the role of the QCD scale anomaly in the gravitational form factors of the nucleon—particularly the form factor—as well as the associated stress distribution and internal forces, using a Skyrme model based on the scale-invariant chiral perturbation theory. A distinctive feature of this model is the inclusion of both the pion and the scalar meson, which respectively capture the effects of the current quark mass and gluonic quantum contributions to the scale anomaly. By varying the mass of the scalar meson, we evaluate the sensitivity of the gluonic scale anomaly to the nucleon properties. We find that the gluonic scale anomaly plays a crucial role in satisfying the stability conditions of the nucleon and provides an internal confining force. Moreover, we also evaluate the momentum-transfer dependence of , which closely reproduces the lattice QCD results. With an appropriate choice of the anomalous dimension associated with the quark mass, its forward-limit value (i.e., the -term) also matches the lattice data well.
Physics Subject Headings (PhySH)
Article Text
References (124)
- D. Fujii, A. Iwanaka, and M. Tanaka, Gravitational form factors of pion from top-down holographic QCD, Phys. Rev. D 110, L091501 (2024).
- D. Fujii, M. Kawaguchi, and M. Tanaka, Dominance of gluonic scale anomaly in confining pressure inside nucleon and -term, Phys. Lett. B 866, 139559 (2025).
- D. Fujii, A. Iwanaka, and M. Tanaka, Dominance of scale anomaly in confining pressure inside pions on light front in the top-down holographic QCD, arXiv:2507.18690.
- V. D. Burkert, L. Elouadrhiri, and F. X. Girod, The pressure distribution inside the proton, Nature (London) 557, 396 (2018).
- V. D. Burkert, L. Elouadrhiri, and F. X. Girod, Determination of shear forces inside the proton, arXiv:2104.02031.
- B. Duran et al., Determining the gluonic gravitational form factors of the proton, Nature (London) 615, 813 (2023).
- M. V. Polyakov and H.-D. Son, Nucleon gravitational form factors from instantons: Forces between quark and gluon subsystems, J. High Energy Phys. 09 (2018) 156.
- P. E. Shanahan and W. Detmold, Pressure distribution and shear forces inside the proton, Phys. Rev. Lett. 122, 072003 (2019).
- C. Lorcé, H. Moutarde, and A. P. Trawiński, Revisiting the mechanical properties of the nucleon, Eur. Phys. J. C 79, 89 (2019).
- I. V. Anikin, Gravitational form factors within light-cone sum rules at leading order, Phys. Rev. D 99, 094026 (2019).
- P. P. Avelino, Probing gravity at sub-femtometer scales through the pressure distribution inside the proton, Phys. Lett. B 795, 627 (2019).
- R. Yanagihara and M. Kitazawa, A study of stress-tensor distribution around the flux tube in the Abelian-Higgs model, Prog. Theor. Exp. Phys. 2019, 093B02 (2019); 2020, 079201(E) (2020).
- Y. Hatta, A. Rajan, and D.-L. Yang, Near threshold and photoproduction at JLab and RHIC, Phys. Rev. D 100, 014032 (2019).
- A. Freese and I. C. Cloët, Impact of dynamical chiral symmetry breaking and dynamical diquark correlations on proton generalized parton distributions, Phys. Rev. C 101, 035203 (2020).
- K. Azizi and U. Özdem, Nucleon’s energy–momentum tensor form factors in light-cone QCD, Eur. Phys. J. C 80, 104 (2020).
- K. A. Mamo and I. Zahed, Diffractive photoproduction of and using holographic QCD: Gravitational form factors and GPD of gluons in the proton, Phys. Rev. D 101, 086003 (2020).
- M. J. Neubelt, A. Sampino, J. Hudson, K. Tezgin, and P. Schweitzer, Energy momentum tensor and the -term in the bag model, Phys. Rev. D 101, 034013 (2020).
- H. Alharazin, D. Djukanovic, J. Gegelia, and M. V. Polyakov, Chiral theory of nucleons and pions in the presence of an external gravitational field, Phys. Rev. D 102, 076023 (2020).
- M. Varma and P. Schweitzer, Effects of long-range forces on the -term and the energy-momentum structure, Phys. Rev. D 102, 014047 (2020).
- J.-Y. Kim, H.-C. Kim, M. V. Polyakov, and H.-D. Son, Strong force fields and stabilities of the nucleon and singly heavy baryon , Phys. Rev. D 103, 014015 (2021).
- D. Chakrabarti, C. Mondal, A. Mukherjee, S. Nair, and X. Zhao, Gravitational form factors and mechanical properties of proton in a light-front quark-diquark model, Phys. Rev. D 102, 113011 (2020).
- R. Yanagihara, M. Kitazawa, M. Asakawa, and T. Hatsuda, Distribution of energy-momentum tensor around a static quark in the deconfined phase of SU(3) Yang-Mills theory, Phys. Rev. D 102, 114522 (2020).
- J.-Y. Kim and B.-D. Sun, Gravitational form factors of a baryon with spin-, Eur. Phys. J. C 81, 85 (2021).
- X.-B. Tong, J.-P. Ma, and F. Yuan, Gluon gravitational form factors at large momentum transfer, Phys. Lett. B 823, 136751 (2021).
- A. Freese and G. A. Miller, Forces within hadrons on the light front, Phys. Rev. D 103, 094023 (2021).
- J. Y. Panteleeva and M. V. Polyakov, Forces inside the nucleon on the light front from 3D Breit frame force distributions: Abel tomography case, Phys. Rev. D 104, 014008 (2021).
- Y. Hatta and M. Strikman, -meson lepto-production near threshold and the strangeness -term, Phys. Lett. B 817, 136295 (2021).
- K. A. Mamo and I. Zahed, Nucleon mass radii and distribution: Holographic QCD, Lattice QCD and GlueX data, Phys. Rev. D 103, 094010 (2021).
- A. Freese and G. A. Miller, Genuine empirical pressure within the proton, Phys. Rev. D 104, 014024 (2021).
- J. Gegelia and M. V. Polyakov, A bound on the nucleon Druck-term from chiral EFT in curved space-time and mechanical stability conditions, Phys. Lett. B 820, 136572 (2021).
- J.-Y. Kim and H.-C. Kim, Energy-momentum tensor of the nucleon on the light front: Abel tomography case, Phys. Rev. D 104, 074019 (2021).
- S. Owa, A. W. Thomas, and X. G. Wang, Effect of the pion field on the distributions of pressure and shear in the proton, Phys. Lett. B 829, 137136 (2022).
- D. A. Pefkou, D. C. Hackett, and P. E. Shanahan, Gluon gravitational structure of hadrons of different spin, Phys. Rev. D 105, 054509 (2022).
- C. Lorcé, A. Metz, B. Pasquini, and S. Rodini, Energy-momentum tensor in QCD: Nucleon mass decomposition and mechanical equilibrium, J. High Energy Phys. 11 (2021) 121.
- X. Ji and Y. Liu, Momentum-current gravitational multipoles of hadrons, Phys. Rev. D 106, 034028 (2022).
- J. More, A. Mukherjee, S. Nair, and S. Saha, Gravitational form factors and mechanical properties of a quark at one loop in light-front Hamiltonian QCD, Phys. Rev. D 105, 056017 (2022).
- K. A. Mamo and I. Zahed, near threshold in holographic QCD: and gravitational form factors, Phys. Rev. D 106, 086004 (2022).
- C. Lorcé, P. Schweitzer, and K. Tezgin, 2D energy-momentum tensor distributions of nucleon in a large- quark model from ultrarelativistic to nonrelativistic limit, Phys. Rev. D 106, 014012 (2022).
- M. Fujita, Y. Hatta, S. Sugimoto, and T. Ueda, Nucleon -term in holographic quantum chromodynamics, Prog. Theor. Exp. Phys. 2022, 093B06 (2022).
- P. Choudhary, B. Gurjar, D. Chakrabarti, and A. Mukherjee, Gravitational form factors and mechanical properties of the proton: Connections between distributions in 2D and 3D, Phys. Rev. D 106, 076004 (2022).
- J.-Y. Kim, B.-D. Sun, D. Fu, and H.-C. Kim, Mechanical structure of a spin-1 particle, Phys. Rev. D 107, 054007 (2023).
- H. Alharazin, E. Epelbaum, J. Gegelia, U. G. Meißner, and B. D. Sun, Gravitational form factors of the delta resonance in chiral EFT, Eur. Phys. J. C 82, 907 (2022).
- H.-Y. Won, J.-Y. Kim, and H.-C. Kim, Gravitational form factors of the baryon octet with flavor SU(3) symmetry breaking, Phys. Rev. D 106, 114009 (2022).
- K. Tanaka, Twist-four gravitational form factor at NNLO QCD from trace anomaly constraints, J. High Energy Phys. 03 (2023) 013.
- H. Ito and M. Kitazawa, Gravitational form factors of a kink in dimensional model, J. High Energy Phys. 08 (2023) 033.
- C. Lorcé and Q.-T. Song, Gravitational transverse-momentum distributions, Phys. Lett. B 843, 138016 (2023).
- A. Amor-Quiroz, W. Focillon, C. Lorcé, and S. Rodini, Energy-momentum tensor in the scalar diquark model, Eur. Phys. J. C 83, 1012 (2023).
- Y. Guo, X. Ji, Y. Liu, and J. Yang, Updated analysis of near-threshold heavy quarkonium production for probe of proton’s gluonic gravitational form factors, Phys. Rev. D 108, 034003 (2023).
- H.-Y. Won, H.-C. Kim, and J.-Y. Kim, Role of strange quarks in the -term and cosmological constant term of the proton, Phys. Rev. D 108, 094018 (2023).
- Y. Guo, X. Ji, and F. Yuan, Proton’s gluon GPDs at large skewness and gravitational form factors from near threshold heavy quarkonium photoproduction, Phys. Rev. D 109, 014014 (2024).
- A. Czarnecki, Y. Liu, and S. N. Reza, Energy-momentum tensor of a hydrogen atom: Stability, -term, and the Lamb shift, Acta Phys. Pol. B Proc. Suppl. 16, 7 (2023).
- H.-Y. Won, H.-C. Kim, and J.-Y. Kim, Mechanical structure of the nucleon and the baryon octet: twist-2 case, J. High Energy Phys. 05 (2024) 173.
- D. C. Hackett, D. A. Pefkou, and P. E. Shanahan, Gravitational form factors of the proton from Lattice QCD, Phys. Rev. Lett. 132, 251904 (2024).
- Y. Hatta, Accessing the gravitational form factors of the nucleon and nuclei through a massive graviton, Phys. Rev. D 109, L051502 (2024).
- K.-F. Liu, Hadrons, superconductor vortices, and cosmological constant, Phys. Lett. B 849, 138418 (2024).
- X.-H. Cao, F.-K. Guo, Q.-Z. Li, and D.-L. Yao, Precise determination of nucleon gravitational form factors, Nat. Commun. 16, 6979 (2025).
- W.-Y. Liu, E. Shuryak, and I. Zahed, Glue in hadrons at medium resolution and the QCD instanton vacuum, Phys. Rev. D 110, 054005 (2024).
- Z. Q. Yao, Y. Z. Xu, D. Binosi, Z. F. Cui, M. Ding, K. Raya, C. D. Roberts, J. Rodríguez-Quintero, and S. M. Schmidt, Nucleon gravitational form factors, Eur. Phys. J. A 61, 92 (2025).
- M. Goharipour, H. Hashamipour, H. Fatehi, F. Irani, K. Azizi, and S. V. Goloskokov (MMGPDs Collaboration), Mechanical properties of the nucleon from the generalized parton distributions, Phys. Rev. D 112, 014016 (2025).
- Z. Dehghan, F. Almaksusi, and K. Azizi, Mechanical properties of proton using flavor-decomposed gravitational form factors, J. High Energy Phys. 06 (2025) 025.
- M. Goharipour, F. Irani, M. H. Amiri, H. Fatehi, B. Falahi, A. Moradi, and K. Azizi (MMGPDs Collaboration), Can we determine the exact size of the nucleon?: A comprehensive study of different radii, Nucl. Phys. B1017, 116962 (2025).
- W. Broniowski and E. Ruiz Arriola, Gravitational form factors and mechanical properties of the nucleon in a meson dominance approach, arXiv:2503.09297.
- N.-Y. Ghim, H.-Y. Won, J.-Y. Kim, and H.-C. Kim, Nucleon tensor form factors at large , Phys. Rev. D 111, 074024 (2025).
- Y. Hatta, H. T. Klest, K. Passek-K., and J. Schoenleber, Deeply virtual -meson production near threshold, arXiv:2501.12343.
- Y. Hatta and J. Schoenleber, Sullivan process near threshold and the pion gravitational form factors, Phys. Rev. Lett. 134, 251901 (2025).
- Z. Dehghan and K. Azizi, Mechanical properties of the baryon from gravitational form factors, Phys. Rev. D 112, 054014 (2025).
- Y. Guo, F. Yuan, and W. Zhao, Bayesian inferring nucleon’s gravitation form factors via near-threshold photoproduction, Phys. Rev. Lett. 135, 111902 (2025).
- Z. Liu and A. Watanabe, Gravitational form factor of the kaon in holographic QCD, arXiv:2503.18747.
- S. Sugimoto and T. Tsukamoto, Energy-momentum tensor and -term of baryons in top-down holographic QCD, arXiv:2503.19492.
- S. Nair, C. Mondal, S. Xu, X. Zhao, and J. P. Vary, Proton gravitational structure and mass decomposition on the light front, arXiv:2506.07554.
- X.-H. Cao, F.-K. Guo, Q.-Z. Li, B.-W. Wu, and D.-L. Yao, Gravitational form factors of pions, kaons and nucleons from dispersion relations, arXiv:2507.05375.
- C. Corianò, S. Lionetti, D. Melle, and R. Tommasi, The gravitational form factor of the pion and proton and the conformal anomaly, EPJ Web Conf. 314, 00030 (2024).
- C. Corianò, S. Lionetti, D. Melle, R. Tommasi, and L. Torcellini, Gravitational form factors and the QCD dilaton at large momentum transfer, in Proceedings of the 24th Hellenic School and Workshops on Elementary Particle Physics and Gravity (MAIK Nauka/Interperiodica, Moscow, 2025).
- R. Stegeman and R. Zwicky, Gravitational -form factor: The -meson as a dilaton confronted with lattice data, arXiv:2508.18537.
- M. V. Polyakov and P. Schweitzer, Forces inside hadrons: Pressure, surface tension, mechanical radius, and all that, Int. J. Mod. Phys. A 33, 1830025 (2018).
- V. D. Burkert, L. Elouadrhiri, F. X. Girod, C. Lorcé, P. Schweitzer, and P. E. Shanahan, Colloquium: Gravitational form factors of the proton, Rev. Mod. Phys. 95, 041002 (2023).
- X.-D. Ji, A QCD analysis of the mass structure of the nucleon, Phys. Rev. Lett. 74, 1071 (1995).
- J. Lanik, A possible coupling of a scalar glueball to pseudoscalar goldstone mesons, Phys. Lett. 144B, 439 (1984).
- J. R. Ellis and J. Lanik, Is scalar gluonium observable?, Phys. Lett. 150B, 289 (1985).
- C. N. Leung, S. T. Love, and W. A. Bardeen, Aspects of dynamical symmetry breaking in gauge field theories, Nucl. Phys. B323, 493 (1989).
- B. A. Campbell, J. R. Ellis, and K. A. Olive, QCD phase transitions in an effective field theory, Nucl. Phys. B345, 57 (1990).
- J. F. Donoghue and H. Leutwyler, Energy and momentum in chiral theories, Z. Phys. C 52, 343 (1991).
- G. E. Brown and M. Rho, Scaling effective Lagrangians in a dense medium, Phys. Rev. Lett. 66, 2720 (1991).
- C. Song, G. E. Brown, D.-P. Min, and M. Rho, Fluctuations in “BR scaled” chiral Lagrangians, Phys. Rev. C 56, 2244 (1997).
- H.-J. Lee, B.-Y. Park, M. Rho, and V. Vento, Sliding vacua in dense skyrmion matter, Nucl. Phys. A726, 69 (2003).
- B.-Y. Park, M. Rho, and V. Vento, Vector mesons and dense Skyrmion matter, Nucl. Phys. A736, 129 (2004).
- B.-Y. Park, M. Rho, and V. Vento, The role of the dilaton in dense skyrmion matter, Nucl. Phys. A807, 28 (2008).
- Y.-L. Li, P.-S. Wen, Y.-L. Ma, and M. Rho, Scale-chiral effective field theory for nuclear interactions in the Veneziano limit, arXiv:1802.08140.
- R. J. Crewther and L. C. Tunstall, rule for kaon decays derived from QCD infrared fixed point, Phys. Rev. D 91, 034016 (2015).
- Y.-L. Li, Y.-L. Ma, and M. Rho, Chiral-scale effective theory including a dilatonic meson, Phys. Rev. D 95, 114011 (2017).
- A. Kasai, K.-i. Okumura, and H. Suzuki, A dilaton-pion mass relation, arXiv:1609.02264.
- M. Hansen, K. Langæble, and F. Sannino, Extending chiral perturbation theory with an isosinglet scalar, Phys. Rev. D 95, 036005 (2017).
- T. Appelquist, J. Ingoldby, and M. Piai, Dilaton EFT framework for lattice data, J. High Energy Phys. 07 (2017) 035.
- T. Appelquist, J. Ingoldby, and M. Piai, Analysis of a dilaton EFT for lattice data, J. High Energy Phys. 03 (2018) 039.
- O. Catà and C. Müller, Chiral effective theories with a light scalar at one loop, Nucl. Phys. B952, 114938 (2020).
- T. Appelquist, J. Ingoldby, and M. Piai, Dilaton potential and lattice data, Phys. Rev. D 101, 075025 (2020).
- T. V. Brown, M. Golterman, S. Krøjer, Y. Shamir, and K. Splittorff, The -regime of dilaton chiral perturbation theory, Phys. Rev. D 100, 114515 (2019).
- S. Matsuzaki and K. Yamawaki, Dilaton Chiral perturbation theory: Determining the mass and decay constant of the technidilaton on the lattice, Phys. Rev. Lett. 113, 082002 (2014).
- R. Zwicky, QCD with an infrared fixed point: The pion sector, Phys. Rev. D 109, 034009 (2024).
- R. Zwicky, QCD with an infrared fixed point and a dilaton, Phys. Rev. D 110, 014048 (2024).
- M. Shifman and R. Zwicky, Relating and in the SQCD conformal window, Phys. Rev. D 108, 114013 (2023).
- T. H. R. Skyrme, A unified field theory of mesons and baryons, Nucl. Phys. 31, 556 (1962).
- G. S. Adkins, C. R. Nappi, and E. Witten, Static properties of nucleons in the Skyrme model, Nucl. Phys. B228, 552 (1983).
- M. V. Polyakov, Generalized parton distributions and strong forces inside nucleons and nuclei, Phys. Lett. B 555, 57 (2003).
- S. L. Adler, J. C. Collins, and A. Duncan, Energy-momentum-tensor trace anomaly in spin- quantum electrodynamics, Phys. Rev. D 15, 1712 (1977).
- J. C. Collins, A. Duncan, and S. D. Joglekar, Trace and dilatation anomalies in gauge theories, Phys. Rev. D 16, 438 (1977).
- M. Laue, Zur dynamik der relativitätstheorie, Ann. Phys. (Berlin) 340, 524 (1911).
- I. A. Perevalova, M. V. Polyakov, and P. Schweitzer, On LHCb pentaquarks as a baryon- bound state: Prediction of isospin- pentaquarks with hidden charm, Phys. Rev. D 94, 054024 (2016).
- C. Lorcé, On the hadron mass decomposition, Eur. Phys. J. C 78, 120 (2018).
- J. A. Ponciano and C. A. Garcia Canal, Approximate solutions for the single soliton in a Skyrmion-type model with a dilaton scalar field, Phys. Rev. C 72, 065206 (2005).
- L. Carson, Static properties of He-3 and H-3 in the Skyrme model, Nucl. Phys. A535, 479 (1991).
- A. Garcia Martin-Caro, M. Huidobro, and Y. Hatta, Gravitational form factors of nuclei in the Skyrme model, Phys. Rev. D 108, 034014 (2023).
- G. E. Brown, A. D. Jackson, M. Rho, and V. Vento, The nucleon as a topological chiral soliton, Phys. Lett. 140B, 285 (1984).
- C. Cebulla, K. Goeke, J. Ossmann, and P. Schweitzer, The nucleon form-factors of the energy momentum tensor in the Skyrme model, Nucl. Phys. A794, 87 (2007).
- X. Ji and C. Yang, Momentum flow and forces on quarks in the nucleon, arXiv:2503.01991.
- D. Diakonov and V. Y. Petrov, Chiral theory of nucleons, JETP Lett. 43, 75 (1986).
- D. Diakonov, V. Y. Petrov, and P. V. Pobylitsa, A chiral theory of nucleons, Nucl. Phys. B306, 809 (1988).
- K. Goeke, J. Grabis, J. Ossmann, M. V. Polyakov, P. Schweitzer, A. Silva, and D. Urbano, Nucleon form-factors of the energy momentum tensor in the chiral quark-soliton model, Phys. Rev. D 75, 094021 (2007).
- P. A. M. Guichon, A possible quark mechanism for the saturation of nuclear matter, Phys. Lett. B 200, 235 (1988).
- K. Saito and A. W. Thomas, A quark-meson coupling model for nuclear and neutron matter, Phys. Lett. B 327, 9 (1994).
- G. A. Miller, Defining the proton radius: A unified treatment, Phys. Rev. C 99, 035202 (2019).
- R. L. Jaffe, Ambiguities in the definition of local spatial densities in light hadrons, Phys. Rev. D 103, 016017 (2021).
- D. Fujii and M. Tanaka, Scale-anomaly-induced confining pressure within hadrons, arXiv:2507.23786.
- X. Ji and C. Yang, A journey of seeking pressures and forces in the nucleon, arXiv:2508.16727.