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Physics and Astronomy · MapleScholar Plus

The Perfectly Round Particle: Measuring the Neutron's Electric Dipole Moment

The mystery of why our universe contains matter instead of equal parts antimatter points toward broken fundamental symmetries; precision measurements of ultracold neutrons show the neutron electric dipole moment is zero down to extraordinary decimal places.

Author
C. Abel et al.
Published
2020
Journal
Physical Review Letters
Last updated
September 2026
The Perfectly Round Particle: Measuring the Neutron's Electric Dipole Moment

At the birth of the universe, the Big Bang should have forged equal amounts of matter and antimatter, annihilating everything into pure radiation. The fact that galaxies, stars, and humans exist proves that an unknown fundamental mechanism broke this symmetry.

The Standard Model accommodates slight CP violation, but not enough to explain the cosmic matter surplus. If the neutron possesses a non-zero permanent electric dipole moment (EDM), it would provide immediate, incontrovertible proof of new CP-violating physics beyond the Standard Model.

At the Paul Scherrer Institute, physicists trapped ultracold neutrons inside vacuum chambers, applying Ramsey's method of separated oscillating magnetic and electric fields to detect any electric-charge-induced spin precession. Their measurement established the most stringent limit in history: the neutron EDM is consistent with zero down to 1.8×10−26e⋅cm1.8 \times 10^{-26} e\cdot\text{cm}.

This breathtaking precision eliminates entire classes of speculative supersymmetric and grand unified theories, forcing theoretical physicists to construct new models of dark matter and baryogenesis that can explain our matter-dominated cosmos without distorting the neutron's perfect symmetry.

Reference

Abel, C., Afach, S., Ayres, N. J., Baker, C. A., Ban, G., Bison, G., Bodek, K., Bondar, V., Burghoff, M., Chanel, E., Chowdhuri, Z., Chiu, P.-J., Clement, B., Crawford, C. B., Daum, M., Emmenegger, S., Ferraris-Bouchez, L., Fertl, M., Flaux, P., et al. (2020). Measurement of the Permanent Electric Dipole Moment of the Neutron. Physical Review Letters, 124(8).

Title

Measurement of the Permanent Electric Dipole Moment of the Neutron

Abstract

We present the result of an experiment to measure the electric dipole moment (EDM) of the neutron at the Paul Scherrer Institute using Ramsey's method of separated oscillating magnetic fields with ultracold neutrons. Our measurement stands in the long history of EDM experiments probing physics violating time-reversal invariance. The salient features of this experiment were the use of a ^{199}Hg comagnetometer and an array of optically pumped cesium vapor magnetometers to cancel and correct for magnetic-field changes. The statistical analysis was performed on blinded datasets by two separate groups, while the estimation of systematic effects profited from an unprecedented knowledge of the magnetic field. The measured value of the neutron EDM is d_{n}=(0.0±1.1_{stat}±0.2_{sys})×10^{-26}  e.cm.

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