Ab initio calculation of nuclear structure corrections in muonic atoms
Chen Ji, Sonia Bacca, Nir Barnea, Oscar Javier Hernandez, Nir, Nevo-Dinur

TL;DR
This paper reviews and updates high-precision calculations of nuclear structure corrections in muonic atoms, crucial for interpreting Lamb shift measurements and addressing the proton-radius puzzle.
Contribution
It provides a comprehensive derivation of the formalism and improved estimates of nuclear corrections using chiral effective field theory, reducing uncertainties significantly.
Findings
Uncertainty in nuclear corrections reduced by a factor of 5.
Updated calculations for muonic deuterium, tritium, and helium isotopes.
Framework for systematic uncertainty assessment using chiral EFT.
Abstract
The measurement of the Lamb shift in muonic hydrogen and the subsequent emergence of the proton-radius puzzle have motivated an experimental campaign devoted to measuring the Lamb shift in other light muonic atoms, such as muonic deuterium and helium. For these systems it has been shown that two-photon exchange nuclear structure corrections are the largest source of uncertainty and consequently the bottleneck for exploiting the experimental precision to extract the nuclear charge radius. Utilizing techniques and methods developed to study electromagnetic reactions in light nuclei, recent calculations of nuclear structure corrections to the muonic Lamb shift have reached unprecedented precision, reducing the uncertainty with respect to previous estimates by a factor of 5 in certain cases. These results will be useful for shedding light on the nature of the proton-radius puzzle and other…
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