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Probing modified gravity with entanglement of microspheres

Ankit Kumar1,2,*, Yen-Kheng Lim3, P. Arumugam1,4, Tom Złośnik5, and Tomasz Paterek3,5

  • 1Department of Physics, Indian Institute of Technology Roorkee, Roorkee 247667, India
  • 2International Centre for Theory of Quantum Technologies, University of Gdańsk, 80-308 Gdańsk, Poland
  • 3School of Mathematics and Physics, Xiamen University Malaysia, 43900 Sepang, Malaysia
  • 4Centre for Photonics and Quantum Communication Technology, Indian Institute of Technology Roorkee, Roorkee 247667, India
  • 5Institute of Theoretical Physics and Astrophysics, Faculty of Mathematics, Physics and Informatics, University of Gdańsk, 80-308 Gdańsk, Poland

  • *kumar.ankit.vyas@gmail.com

Phys. Rev. D 109, L101501 – Published 10 May, 2024

DOI: https://doi.org/10.1103/PhysRevD.109.L101501

Abstract

While a wide variety of astrophysical and cosmological phenomena suggest the presence of dark matter, all evidence remains via its gravitational effect on the known matter. As such, it is conceivable that this evidence could be explained by a modification to gravitation and/or concepts of inertia. Various formulations of modified gravity exist, each giving rise to several noncanonical outcomes. This motivates us to propose an experiment searching for departures from (quantum) Newtonian predictions in a bipartite setting with gravitational accelerations ≲10−10  m/s2, i.e., where the effective force needs to be stronger than Newtonian to account for the dark matter effects. Since quantum particles naturally source weak gravitation, their nonrelativistic dynamics offers opportunities to test this small acceleration regime. We show that two nearby mesoscopic quantum masses accumulate significantly larger entanglement in modified gravity models, such as the modified Newtonian dynamics. Our calculations include Casimir-Polder forces as well as tidal effects next to the surface of the Earth, and confirm that entanglement is observable within the limits imposed by environmental decoherence. We demonstrate how the temperature can be fine-tuned such that modified gravity is certified simply by witnessing the entanglement generated from uncorrelated thermal states, eliminating the need for precise noise characterization. Overall, the required parameters could be realized in a tabletop experiment.

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