The role of relativistic many-body theory in probing new physics beyond the standard model via the electric dipole moments of diamagnetic atoms
arXiv:1710.10946 · doi:10.1088/1742-6596/1041/1/012014
Abstract
The observation of electric dipole moments (EDMs) in atomic systems due to parity and time-reversal violating (P,T-odd) interactions can probe new physics beyond the standard model and also provide insights into the matter-antimatter asymmetry in the Universe. The EDMs of open-shell atomic systems are sensitive to the electron EDM and the P,T-odd scalar-pseudoscalar (S-PS) semi-leptonic interaction, but the dominant contributions to the EDMs of diamagnetic atoms come from the hadronic and tensor-pseudotensor (T-PT) semi-leptonic interactions. Several diamagnetic atoms like Xe, Yb, Hg, Rn, and Ra are candidates for the experimental search for the possible existence of EDMs, and among these Hg has yielded the lowest limit till date. The T or CP violating coupling constants of the aforementioned interactions can be extracted from these measurements by combining with atomic and nuclear calculations. In this work, we report the calculations of the EDMs of the above atoms by including both the electromagnetic and P,T-odd violating interactions simultaneously. These calculations are performed by employing relativistic many-body methods based on the random phase approximation (RPA) and the singles and doubles coupled-cluster (CCSD) method starting with the Dirac-Hartree-Fock (DHF) wave function in both cases. The differences in the results from both the methods shed light on the importance of the non-core-polarization electron correlation effects that are accounted for by the CCSD method. We also determine electric dipole polarizabilities of these atoms, which have computational similarities with EDMs and compare them with the available experimental and other theoretical results to assess the accuracy of our calculations.
Submitted to J. Phys. Conf. Series for the proceeding of the 19th International Conference on Recent Progress in Many-Body Theories held during June 25-30, 2017 at APCTP , Pohang, Korea
References in corpus (12)
- Matter and Antimatter in the Universe
- Reduced Limit on the Permanent Electric Dipole Moment of Hg
- Probing exotic phenomena at the interface of nuclear and particle physics with the electric dipole moments of diamagnetic atoms: A unique window to hadronic and semi-leptonic CP violation
- Unraveling models of CP violation through electric dipole moments of light nuclei
- Calculation of P,T-odd electric dipole moments for diamagnetic atoms Xe, Yb, Hg, Rn, and Ra
- Intrinsic Electric Dipole Moments of Paramagnetic Atoms: Rubidium and Cesium
- Mercury Monohalides: Suitability for Electron Electric Dipole Moment Searches
- Rigorous limits for hadronic and semi-leptonic CP-violating coupling constants from the electric dipole moment of Hg
- A frustrated honeycomb-bilayer Heisenberg antiferromagnet: The spin- ---- model
- Perturbed Coupled-Cluster theory to calculate dipole polarizabilities of closed shell systems: Application to Ar, Kr, Xe and Rn
- Significance of distinct electron correlation effects in determining the P,T-odd electric dipole moment of Yb
- A Relativistic Many-Body Analysis of the Electric Dipole Moment of Rn
Cited by in corpus (3)
- RCC calculation of electric dipole polarizability and correlation energy of Cn, Nh and Og: Correlation effects from lighter to superheavy elements
- Relativistic many body theory of the electric dipole moment of Xe and its implications for probing new physics beyond the Standard Model
- Relativistic and Electron Correlation Effects in Static Dipole Polarizabilities for Main-Group Elements