Gravitational Harmonium: Gravitationally Induced Entanglement in a
Harmonic Trap
- URL: http://arxiv.org/abs/2302.05463v1
- Date: Fri, 10 Feb 2023 19:00:04 GMT
- Title: Gravitational Harmonium: Gravitationally Induced Entanglement in a
Harmonic Trap
- Authors: Jackson Yant and Miles Blencowe
- Abstract summary: We give a non-relativistic quantum mechanical analysis of the gravitationally induced entanglement of this system.
The present work serves as the basis for a subsequent investigation, which models this system using quantum field theory.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Recent work has shown that it may be possible to detect gravitationally
induced entanglement in tabletop experiments in the not-too-distant future.
However, there are at present no thoroughly developed models for this type of
experiment where the entangled particles are treated more fundamentally as
excitations of a relativistic quantum field, and with the measurements modeled
using expectation values of field observables. Here we propose a thought
experiment where two particles (i.e., massive scalar field quanta) are
initially prepared in a superposition of coherent states within a common
three-dimensional (3D) harmonic trap. The particles then develop entanglement
through their mutual gravitational interaction, which can be probed through
particle position detection probabilities. The present work gives a
non-relativistic quantum mechanical analysis of the gravitationally induced
entanglement of this system, which we term the `gravitational harmonium' due to
its similarity to the harmonium model of approximate electron interactions in a
helium atom; the entanglement is operationally determined through the matter
wave interference visibility. The present work serves as the basis for a
subsequent investigation, which models this system using quantum field theory,
providing further insights into the quantum nature of gravitationally induced
entanglement through relativistic corrections, together with an operational
procedure to quantify the entanglement.
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