Probing Dark Energy models with neutrons
arXiv:1503.03317 · doi:10.1142/S0217751X15300483
Abstract
There is a deep connection between cosmology -- the science of the infinitely large --and particle physics -- the science of the infinitely small. This connection is particularly manifest in neutron particle physics. Basic properties of the neutron -- its Electric Dipole Moment and its lifetime -- are intertwined with baryogenesis and nucleosynthesis in the early Universe. I will cover this topic in the first part, that will also serve as an introduction (or rather a quick recap) of neutron physics and Big Bang cosmology. Then, the rest of the manuscript will be devoted to a new idea: using neutrons to probe models of Dark Energy. In the second part, I will present the chameleon theory: a light scalar field accounting for the late accelerated expansion of the Universe, which interacts with matter in such a way that it does not mediate a fifth force between macroscopic bodies. However, neutrons can alleviate the chameleon mechanism and reveal the presence of the scalar field with properly designed experiments. In the third part, I will describe a recent experiment performed with a neutron interferometer at the Institut Laue Langevin that sets already interesting constraints on the chameleon theory. Last, the chameleon field can be probed by measuring the quantum states of neutrons bouncing over a mirror. In the fourth part I will present the status and prospects of the GRANIT experiment at the ILL.
References in corpus (29)
- Dynamics of dark energy
- Big-Bang Nucleosynthesis
- An Improved Experimental Limit on the Electric Dipole Moment of the Neutron
- Tests of the Gravitational Inverse-Square Law below the Dark-Energy Length Scale
- Evading Equivalence Principle Violations, Cosmological and other Experimental Constraints in Scalar Field Theories with a Strong Coupling to Matter
- Atom-interferometry constraints on dark energy
- Neutron scattering and extra short range interactions
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- Standard big bang nucleosynthesis and primordial CNO Abundances after Planck
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- A magnetically shielded room with ultra low residual field and gradient
- A direct experimental limit on neutron -- mirror neutron oscillations
- Neutron Interferometry constrains dark energy chameleon fields
- Test of Lorentz invariance with spin precession of ultracold neutrons
- Atomic Precision Tests and Light Scalar Couplings
- Laboratory constraints on chameleon dark energy and power-law fields
- Neutron to Mirror-Neutron Oscillations in the Presence of Mirror Magnetic Fields
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- New constraints on Lorentz invariance violation from the neutron electric dipole moment
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- Development of a Pixel Detector for Ultra-Cold Neutrons
- Frequency shifts in gravitational resonance spectroscopy
- Status of the GRANIT facility
- Transitions between levels of a quantum bouncer induced by a noise-like perturbation
Cited by in corpus (26)
- Chameleon Dark Energy and Atom Interferometry
- Neutron Limit on the Strongly-Coupled Chameleon Field
- A relativistic quantum oscillator subject to a Coulomb-type potential induced by effects of the violation of the Lorentz symmetry
- Comparison of ultracold neutron sources for fundamental physics measurements
- Bounding Quantum Dark Forces
- Particle Physics at the European Spallation Source
- Magnetic field uniformity in neutron electric dipole moment experiments
- General CPT-even dimension-five nonminimal couplings between fermions and photons yielding EDM and MDM
- Charting the Fifth Force Landscape
- Exact Solution for Chameleon Field, Self-Coupled Through the Ratra-Peebles Potential with n = 1 and Confined Between Two Parallel Plates
- The shape dependence of chameleon screening
- Cosmological constraints on the neutron lifetime
- Constraining dimension-six nonminimal Lorentz-violating electron-nucleon interactions with EDM physics
- Internal Consistency of Neutron Coherent Scattering Length Measurements from Neutron Interferometry and from Neutron Gravity Reflectometry for Exotic Yukawa Analyses
- Boron-10 conversion layer for ultra-cold neutron detection
- Effective Low-Energy Potential for Slow Dirac Fermions in Einstein-Cartan Gravity with Torsion and Chameleon
- Demonstration of Sub-micron UCN Position Resolution using Room-temperature CMOS Sensor
- A boron-coated CCD camera for direct detection of Ultracold Neutrons (UCN)
- The primordial helium abundance and the number of neutrino families
- Neutron phase spin echo
- C2D8: An eight channel CCD readout electronics dedicated to low energy neutron detection
- Spatial resolution determination of a position sensitive ultra-cold neutron detector
- Constraining EDM and MDM lepton dimension five interactions in the electroweak sector
- Can Chameleon Field be identified with Quintessence ?
- Effects of ultra-light dark matter on the gravitational quantum well
- Recent results and perspectives on cosmology and fundamental physics from microwave surveys