Accurate Charge Radius Measurement of 14C Confronts Ab Initio Theory
Kristian König, Patrick Müller, Tobias Gesser, Emily Burbach, Stefano Gandolfi, Matthias Heinz, Phillip Imgram, Alessandro Lovato, Pieter Maris, Takayuki Miyagi, Wilfried Nörtershäuser, Robert Roth, Julien Spahn, Achim Schwenk
Abstract
Located at the neutron shell closure N = 8, the long-lived radioactive isotope \(14C \) plays a critical role in geochronology and nuclear structure studies. Despite its widespread use, the nuclear charge radius of 14C has remained less precisely known compared to its stable counterpart 12C. Here, we report a high-precision determination of the 14C charge radius using collinear laser spectroscopy at the COALA setup at TU Darmstadt, improving upon the precision of previous muonic measurements by a factor 5 and revealing a 1.9σ discrepancy of combined uncertainty, indicating a likely underestimated uncertainty in the muonic determination. This measurement challenges state-of-the-art ab initio nuclear theory calculations, including auxiliary field diffusion Monte Carlo, the valence-space in-medium similarity renormalization group, and the no-core shell model, augmented by neural-network techniques. With 12C and 14C now forming one of the most precisely characterized even-even isotope pairs, these results also enable improved QED tests.
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