Using Atom Interferometry to Detect Dark Energy
arXiv:1507.07493 · doi:10.1080/00107514.2015.1060058
Abstract
We review the tantalising prospect that the first evidence for the dark energy driving the observed acceleration of the Universe on giga-parsec scales may be found through metre scale laboratory based atom interferometry experiments. To do that, we first introduce the idea that scalar fields could be responsible for dark energy and show that in order to be compatible with fifth force constraints these fields must have a screening mechanism which hides their effects from us within the solar system. Particular emphasis is placed on one such screening mechanism known as the chameleon effect where the field's mass becomes dependent on the environment. The way the field behaves in the presence of a spherical source is determined and we then go on to show how in the presence of the kind of high vacuum associated with atom interferometry experiments, and when the test particle is an atom, it is possible to use the associated interference pattern to place constraints on the acceleration due to the fifth force of the chameleon field - this has already been used to rule out large regions of the chameleon parameter space and maybe one day will be able to detect the force due to the dark energy field in the laboratory.
20 pages, 6 figures. This is an author-created, un-copyedited version of an article published in Contemporary Physics
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Cited by in corpus (27)
- Tests of Chameleon Gravity
- A Compendium of Chameleon Constraints
- Chameleon Dark Energy and Atom Interferometry
- The Novel Probes Project -- Tests of Gravity on Astrophysical Scales
- Testing Screened Modified Gravity
- Neutron Limit on the Strongly-Coupled Chameleon Field
- Exact Solutions to Non-Linear Symmetron Theory: One and Two Mirror Systems
- Screened Scalar Fields in the Laboratory and the Solar System
- Constraining screened fifth forces with the electron magnetic moment
- Lensing with generalized symmetrons
- Exact Solution for Chameleon Field, Self-Coupled Through the Ratra-Peebles Potential with n = 1 and Confined Between Two Parallel Plates
- Quantum Chameleons
- Dilaton-induced open quantum dynamics
- A general study of chameleon fifth force in gravity space experiments
- A Proposed Experimental Search for Chameleons using Asymmetric Parallel Plates
- Constraining modified gravity with quantum optomechanics
- Fifth force induced by a chameleon field on nested cylinders
- Detecting Domain Walls in Laboratory Experiments
- Search for dark energy with neutron interferometry
- Effects of a scalar fifth force on the dynamics of a charged particle as a new experimental design to test chameleon theories
- Frequency shifts induced by light scalar fields
- Dynamical Casimir effect with screened scalar fields
- Non-linear Phenomenology of Disformally Coupled Quintessence
- Equivalence of scalar-tensor theories and scale-dependent gravity
- Quantum and thermal pressures from light scalar fields
- What laboratory experiments can teach us about cosmology: A chameleon example
- An atomic Fabry-Perot interferometer-based acceleration sensor for microgravity environments