A small proton charge radius from an electron-proton scattering experiment.

Xiong, W; Gasparian, A; Gao, H; Dutta, D; Khandaker, M; Liyanage, N; Pasyuk, E; Peng, C et al. · Nature · 2019

basic_science · Level V

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Abstract

Elastic electron-proton scattering (e-p) and the spectroscopy of hydrogen atoms are the two methods traditionally used to determine the proton charge radius, r<sub>p</sub>. In 2010, a new method using muonic hydrogen atoms<sup>1</sup> found a substantial discrepancy compared with previous results<sup>2</sup>, which became known as the 'proton radius puzzle'. Despite experimental and theoretical efforts, the puzzle remains unresolved. In fact, there is a discrepancy between the two most recent spectroscopic measurements conducted on ordinary hydrogen<sup>3,4</sup>. Here we report on the proton charge radius experiment at Jefferson Laboratory (PRad), a high-precision e-p experiment that was established after the discrepancy was identified. We used a magnetic-spectrometer-free method along with a windowless hydrogen gas target, which overcame several limitations of previous e-p experiments and enabled measurements at very small forward-scattering angles. Our result, r<sub>p</sub> = 0.831 ± 0.007<sub>stat</sub> ± 0.012<sub>syst</sub> femtometres, is smaller than the most recent high-precision e-p measurement<sup>5</sup> and 2.7 standard deviations smaller than the average of all e-p experimental results<sup>6</sup>. The smaller r<sub>p</sub> we have now measured supports the value found by two previous muonic hydrogen experiments<sup>1,7</sup>. In addition, our finding agrees with the revised value (announced in 2019) for the Rydberg constant<sup>8</sup>-one of the most accurately evaluated fundamental constants in physics.