6533b7dbfe1ef96bd12709c6

RESEARCH PRODUCT

Sum rules across the unpolarized Compton processes involving generalized polarizabilities and moments of nucleon structure functions

Vadim LenskyVadim LenskyMarc VanderhaeghenVladimir PascalutsaFranziska Hagelstein

subject

PhysicsParticle physicsStructure constantsChiral perturbation theoryProtonNuclear Theory010308 nuclear & particles physics530 PhysicsCompton scatteringFOS: Physical sciences01 natural sciences530Lamb shiftNuclear Theory (nucl-th)High Energy Physics - PhenomenologyHigh Energy Physics - Phenomenology (hep-ph)Polarizability0103 physical sciencesddc:530Sum rule in quantum mechanicsPhysics::Atomic PhysicsNuclear Experiment (nucl-ex)010306 general physicsNucleonNuclear Experiment

description

We derive two new sum rules for the unpolarized doubly virtual Compton scattering process on a nucleon, which establish novel low-$Q^2$ relations involving the nucleon's generalized polarizabilities and moments of the nucleon's unpolarized structure functions $F_1(x,Q^2)$ and $F_2(x,Q^2)$. These relations facilitate the determination of some structure constants which can only be accessed in off-forward doubly virtual Compton scattering, not experimentally accessible at present. We perform an empirical determination for the proton and compare our results with a next-to-leading-order chiral perturbation theory prediction. We also show how these relations may be useful for a model-independent determination of the low-$Q^2$ subtraction function in the Compton amplitude, which enters the two-photon-exchange contribution to the Lamb shift of (muonic) hydrogen. An explicit calculation of the $\Delta(1232)$-resonance contribution to the muonic-hydrogen $2P-2S$ Lamb shift yields $-1 \pm 1$ $\mathsf\mu$eV, confirming the previously conjectured smallness of this effect.

https://dx.doi.org/10.15120/gsi-2019-00681