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A Spin-Based Pathway to Testing the Quantum Nature of Gravity

Quantum Physics 2025-09-03 v1 General Relativity and Quantum Cosmology Instrumentation and Detectors

Abstract

A key open problem in physics is the correct way to combine gravity (described by general relativity) with everything else (described by quantum mechanics). This problem suggests that general relativity and possibly also quantum mechanics need fundamental corrections. Most physicists expect that gravity should be quantum in character, but gravity is fundamentally different to the other forces because it alone is described by spacetime geometry. Experiments are needed to test whether gravity, and hence space-time, is quantum or classical. We propose an experiment to test the quantum nature of gravity by checking whether gravity can entangle two micron-sized crystals. A pathway to this is to create macroscopic quantum superpositions of each crystal first using embedded spins and Stern-Gerlach forces. These crystals could be nanodiamonds containing nitrogen-vacancy (NV) centres. The spins can subsequently be measured to witness the gravitationally generated entanglement. This is based on extensive theoretical feasibility studies and experimental progress in quantum technology. The eventual experiment will require a medium-sized consortium with excellent suppression of decoherence including vibrations and gravitational noise. In this white paper, we review the progress and plans towards realizing this. While implementing these plans, we will further explore the most macroscopic superpositions that are possible, which will test theories that predict a limit to this.

Keywords

Cite

@article{arxiv.2509.01586,
  title  = {A Spin-Based Pathway to Testing the Quantum Nature of Gravity},
  author = {Sougato Bose and Anupam Mazumdar and Roger Penrose and Ivette Fuentes and Marko Toroš and Ron Folman and Gerard J. Milburn and Myungshik Kim and Adrian Kent and A. T. M. Anishur Rahman and Cyril Laplane and Aaron Markowitz and Debarshi Das and Ethan Campos-Méndez and Eva Kilian and David Groswasser and Menachem Givon and Or Dobkowski and Peter Skakunenko and Maria Muretova and Yonathan Japha and Naor Levi and Omer Feldman and Damián Pitalúa-García and Jonathan M. H. Gosling and Ka-Di Zhu and Marco Genovese and Kia Romero-Hojjati and Ryan J. Marshman and Markus Rademacher and Martine Schut and Melanie Bautista-Cruz and Qian Xiang and Stuart M. Graham and James E. March and William J. Fairbairn and Karishma S. Gokani and Joseph Aziz and Richard Howl and Run Zhou and Ryan Rizaldy and Thiago Guerreiro and Tian Zhou and Jason Twamley and Chiara Marletto and Vlatko Vedral and Jonathan Oppenheim and Mauro Paternostro and Hendrik Ulbricht and Peter F. Barker and Thomas P. Purdy and M. V. Gurudev Dutt and Andrew A. Geraci and David C. Moore and Gavin W. Morley},
  journal= {arXiv preprint arXiv:2509.01586},
  year   = {2025}
}

Comments

18 pages, 2 figures, Submission to 2025 European Strategy for Particle Physics: see https://indico.cern.ch/event/1439855/contributions/6461673/

R2 v1 2026-07-01T05:15:44.516Z