English

Relative Acceleration Noise Mitigation for Nanocrystal Matter-wave Interferometry: Application to Entangling Masses via Quantum Gravity

General Relativity and Quantum Cosmology 2021-06-08 v2 High Energy Physics - Theory Quantum Physics

Abstract

Matter wave interferometers with large momentum transfers, irrespective of specific implementations, will face a universal dephasing due to relative accelerations between the interferometric mass and the associated apparatus. Here we propose a solution that works even without actively tracking the relative accelerations: putting both the interfering mass and its associated apparatus in a freely falling capsule, so that the strongest inertial noise components vanish due to the equivalence principle. In this setting, we investigate two of the most important remaining noise sources: (a) the non-inertial jitter of the experimental setup and (b) the gravity-gradient noise. We show that the former can be reduced below desired values by appropriate pressures and temperatures, while the latter can be fully mitigated in a controlled environment. We finally apply the analysis to a recent proposal for testing the quantum nature of gravity [S. Bose et. al. Phys. Rev. Lett 119, 240401 (2017)] through the entanglement of two masses undergoing interferometry. We show that the relevant entanglement witnessing is feasible with achievable levels of relative acceleration noise.

Keywords

Cite

@article{arxiv.2007.15029,
  title  = {Relative Acceleration Noise Mitigation for Nanocrystal Matter-wave Interferometry: Application to Entangling Masses via Quantum Gravity},
  author = {Marko Toroš and Thomas W. van de Kamp and Ryan J. Marshman and M. S. Kim and Anupam Mazumdar and Sougato Bose},
  journal= {arXiv preprint arXiv:2007.15029},
  year   = {2021}
}

Comments

16 pages, 5 figures; accepted for publication in Physical Review Research