Quantum Interference to Measure Spacetime Curvature: A Proposed Experiment at the Intersection of Quantum Mechanics and General Relativity
arXiv:gr-qc/0304027 · doi:10.1142/S0218271803003943
Abstract
An experiment in Low Earth Orbit (LEO) is proposed to measure components of the Riemann curvature tensor using atom interferometry. We show that the difference in the quantum phase of an atom that can travel along two intersecting geodesics is given by times the spacetime volume contained within the geodesics. Our expression for also holds for gravitational waves in the long wavelength limit.
7 pages LaTeXed with RevTeX 4.0, 2 figures. Submitted to the 2003 Gravity Research Foundation Essay Contest
Cited by in corpus (6)
- Gravitational wave detectors based on matter wave interferometers (MIGO) are no better than laser interferometers (LIGO)
- Towards MIGO, the Matter-wave Interferometric Gravitational-wave Observatory, and the Intersection of Quantum Mechanics with General Relativity
- Atom interferometry
- Conceptual tensions between quantum mechanics and general relativity: Are there experimental consequences?
- Transit time of a freely-falling quantum particle in a background gravitational field
- Quantum sensors with matter waves for GW observation