Fundamental forces weaker than gravity would be detectable
High-precision laboratory and space-based experiments are actively designed to detect subtle fundamental forces weaker than gravity.
The claim is specific and empirical, addressing whether fundamental forces weaker than gravity can be detected. Papers [0] and [2] provide supporting evidence by discussing ongoing and planned experimental efforts, such as space-based atom interferometry and laboratory tests for dilaton fields, explicitly aimed at detecting such subtle forces and deviations from General Relativity. No papers refute the claim.
Williams JR, Sackett CA, Ahlers H, Aveline DC, Boegel P, Botsi S, Charron E, Elliott ER, Gaaloul N, Giese E, Herr W, Kellogg JR, Kohel JM, Lay NE, Meister M, Müller G, Müller H, Oudrhiri K, Phillips L, Pichery A, Rasel EM, Roura A, Sbroscia M, Schleich WP, Schneider C, Schubert C, Sen B, Thompson RJ, Bigelow NP. Pathfinder experiments with atom interferometry in the Cold Atom Lab onboard the International Space Station.. 2024. https://doi.org/10.1038/s41467-024-50585-6
Paper [0] discusses space-based quantum sensors and atom interferometers designed to search for subtle forces beyond the Standard Model.
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Brax P, Fischer H, Käding C, Pitschmann M. The environment dependent dilaton in the laboratory and the solar system.. 2022. https://doi.org/10.1140/epjc/s10052-022-10905-w
Paper [2] examines environment-dependent dilaton models and laboratory experiments designed to test deviations from General Relativity.
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