Generation of a high-intensity, superthermal muonium beam for gravity and laser spectroscopy experiments

Abstract The universality of free fall, a cornerstone of Einstein’s theory of gravity, has so far only been tested with neutral composite states of first-generation standard model particles, such as atoms, neutrons and antihydrogen. Muonium, the bound state of a positively charged anti-muon and an electron, offers the possibility to probe gravity in the absence of the strong interaction with second-generation standard model particles. However, the short muon lifetime and the existing diffuse thermal muonium sources rendered such measurements unfeasible. Here we report the generation of a high-brightness muonium beam, which we extract from a thin layer of superfluid helium. The mean longitudinal velocity and narrow spread of the velocity distribution indicate a superthermal beam, and yields are similar to the highest-intensity diffuse sources. This beam is expected to enable muonium interferometry and a per-cent-level measurement of its gravitational acceleration. In addition, its unprecedented brightness opens the way to sub-kilohertz 1S–2S spectroscopy, enabling the precise determination of the muon mass and stringent tests of bound-state quantum electrodynamics.

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Publication Details

Journal
Nature Physics
Published
2026-09-14
DOI
https://doi.org/10.1038/s41567-026-03433-x
Citations
1
Primary Topic
Atomic and Molecular Physics
Type
article
Field-Weighted Citation Impact
4.22
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article

Generation of a high-intensity, superthermal muonium beam for gravity and laser spectroscopy experiments

Aldo Antognini, Frederik Waûters, J. Zhang, K. Kirch et al.
1 citations
Nature Physics
Atomic and Molecular Physics
4.22
article

Generation of a high-intensity, superthermal muonium beam for gravity and laser spectroscopy experiments

Aldo Antognini, Frederik Waûters, J. Zhang, K. Kirch, A. Knecht, D. Goeldi, M. Bartkowiak, P. Wegmann, A. Sótér, D. Taqqu, R. Waddy
article en
1 citations

Abstract

Abstract The universality of free fall, a cornerstone of Einstein’s theory of gravity, has so far only been tested with neutral composite states of first-generation standard model particles, such as atoms, neutrons and antihydrogen. Muonium, the bound state of a positively charged anti-muon and an electron, offers the possibility to probe gravity in the absence of the strong interaction with second-generation standard model particles. However, the short muon lifetime and the existing diffuse thermal muonium sources rendered such measurements unfeasible. Here we report the generation of a high-brightness muonium beam, which we extract from a thin layer of superfluid helium. The mean longitudinal velocity and narrow spread of the velocity distribution indicate a superthermal beam, and yields are similar to the highest-intensity diffuse sources. This beam is expected to enable muonium interferometry and a per-cent-level measurement of its gravitational acceleration. In addition, its unprecedented brightness opens the way to sub-kilohertz 1S–2S spectroscopy, enabling the precise determination of the muon mass and stringent tests of bound-state quantum electrodynamics.

Nature Physics
Johannes Gutenberg University Mainz (DE), Paul Scherrer Institute (CH), ETH Zurich (CH)
Openalex Percentile: Top 5%
Atomic and Molecular Physics
4.22
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Generation of a high-intensity, superthermal muonium beam for gravity and laser spectroscopy experiments — Aldo Antognini, Frederik Waûters, et al. · Nature Physics (2026) | TGRS Research Map | TGRS