Trapped ion emulation of electric dipole moment of neutral relativistic particles
arXiv:1209.1214 · doi:10.1103/PhysRevA.87.022103
Abstract
The electric dipole moments of various neutral elementary particles, such as neutron, neutrinos, certain hypothetical dark matter particles and others, are predicted to exist by the standard model of high energy physics and various extensions of it. However, the predicted values are beyond the present experimental capabilities. We propose to simulate and emulate the electric dipole moment of neutral relativistic particles and the ensuing effects in the presence of electrostatic field by emulation of an extended Dirac equation in ion traps.
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- Schrödinger cat and Werner state disentanglement simulated by trapped ion systems
- Phase-space elementary information content of confined Dirac spinors
- Dirac bi-spinor entanglement under local noise and its simulation by Jaynes-Cummings interactions