Exploring the unification of quantum theory and general relativity with a Bose-Einstein condensate
arXiv:1812.04630 · doi:10.1088/1367-2630/ab104a
Abstract
Despite almost a century's worth of study, it is still unclear how general relativity (GR) and quantum theory (QT) should be unified into a consistent theory. The conventional approach is to retain the foundational principles of QT, such as the superposition principle, and modify GR. This is referred to as `quantizing gravity', resulting in a theory of `quantum gravity'. The opposite approach is `gravitizing QT' where we attempt to keep the principles of GR, such as the equivalence principle, and consider how this leads to modifications of QT. What we are most lacking in understanding which route to take, if either, is experimental guidance. Here we consider using a Bose-Einstein condensate (BEC) to search for clues. In particular, we study how a single BEC in a superposition of two locations could test a gravitizing QT proposal where wavefunction collapse emerges from a unified theory as an objective process, resolving the measurement problem of QT. Such a modification to QT due to general relativistic principles is testable near the Planck mass scale, which is much closer to experiments than the Planck length scale where quantum, general relativistic effects are traditionally anticipated in quantum gravity theories. Furthermore, experimental tests of this proposal should be simpler to perform than recently suggested experiments that would test the quantizing gravity approach in the Newtonian gravity limit by searching for entanglement between two massive systems that are both in a superposition of two locations.
51 pages, 10 figures
References in corpus (12)
- A Spin Entanglement Witness for Quantum Gravity
- Gravitationally-induced entanglement between two massive particles is sufficient evidence of quantum effects in gravity
- Tabletop experiments for quantum gravity: a user's manual
- On the possibility of laboratory evidence for quantum superposition of geometries
- Non-equilibrium dynamics of bosonic atoms in optical lattices: Decoherence of many-body states due to spontaneous emission
- Large atom number Bose-Einstein condensate of sodium
- Comments on Proposed Gravitational Modifications of Schrodinger Dynamics and their Experimental Implications
- When can gravity path-entangle two spatially superposed masses?
- Three-Body Recombination in One Dimension
- Quantifying the mesoscopic quantum coherence of approximate NOON states and spin-squeezed two-mode Bose-Einstein condensates
- Creation of macroscopic superposition states from arrays of Bose-Einstein condensates
- A family of many-body models which are exactly solvable analytically
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- Atomic Quantum Technologies for Quantum Matter and Fundamental Physics Applications
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- Macroscopic quantum mechanics in gravitational-wave observatories and beyond
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- Time travel without paradoxes: Ring resonator as a universal paradigm for looped quantum evolutions
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- Conditions for graviton emission in the recombination of a delocalized mass
- The Quantum Measurement Problem: A Review of Recent Trends
- Entanglement-enhanced quantum ranging in the near-Earth spacetime
- Conceptual and technical challenges of quantum gravity
- Gravity induced entanglement of multiple massive particles with large spin
- Spontaneous wave function collapse from non-local gravitational self-energy
- Information versus Physicality: On the Nature of the Wavefunctions of Quantum Mechanics
- Interferometric Visibility in Curved Spacetimes
- Series solution of the time-dependent Schrödinger-Newton equations in the presence of dark energy via the Adomian Decomposition Method
- Bell correlations between momentum-entangled pairs of atoms
- On the feasibility of detecting quantum delocalization effects on relativistic time dilation in optical clocks
- Gravitational reduction of the wave function through the quantum theory of motion
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- On Penrose's theory of objective gravitationally induced wave function reduction