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Twist-four gravitational form factor at NNLO QCD from trace anomaly constraints

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arxiv 2212.09417 v3 pith:7QMFUS3B submitted 2022-12-19 hep-ph nucl-th

classification hep-phnucl-th
keywords anomalyformgravitationaltracefactorforwardgluonnnlo
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

It is known that the trace anomaly in the QCD energy-momentum tensor $T^{\mu \nu}$ can be attributed to the anomalies for each of the gauge-invariant quark part and gluon part of $T^{\mu \nu}$, and their explicit three-loop formulas have been derived in the $\overline{\rm MS}$ scheme in the dimensional regularization. The matrix elements of this quark/gluon decomposition of the QCD trace anomaly allow us to derive the QCD constraints on the hadron's gravitational form factors, in particular, on the twist-four gravitational form factor, $\bar{C}_{q,g}$. Using the three-loop quark/gluon trace anomaly formulas, we calculate the forward (zero momentum transfer) value of the twist-four gravitational form factor $\bar{C}_{q,g}$ at the next-to-next-to-leading-order (NNLO) accuracy. We present quantitative results for nucleon as well as for pion, leading to a model-independent determination of the forward value of $\bar{C}_{q,g}$. We find quite different pattern in the obtained results between the nucleon and the pion. In particular, for the nucleon, the present information from experiment and lattice QCD on the nonperturbative matrix elements arising in our NNLO formula allows us to obtain a prediction of the forward value of $\bar{C}_{q,g}$ at the accuracy of a few percent level.

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Cited by 3 Pith papers

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    A Skyrme model with a dilaton field attributes the proton's negative internal pressure and confining force to the gluonic scale anomaly, and reproduces the lattice QCD D(t) form factor.

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    Using large-volume lattice QCD at physical quark masses, the PACS Collaboration shows that a new excited-state subtraction makes the nucleon pseudoscalar and induced-pseudoscalar form factors consistent with pion-pole...

  3. Gluonic Energy Momentum Tensor Form Factors of the Proton

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