Measuring Nuclear Spin Dependent Parity Violation With Molecules: Experimental Methods and Analysis of Systematic Errors
Abstract
Nuclear spin-dependent parity violation (NSD-PV) effects in atoms and molecules arise from boson exchange between electrons and the nucleus, and from the magnetic interaction between electrons and the parity-violating nuclear anapole moment. It has been proposed to study NSD-PV effects using an enhancement of the observable effect in diatomic molecules [D. DeMille , Phys. Rev. Lett. , 023003 (2008)]. Here, we demonstrate measurements of this type with sensitivity surpassing that of any previous atomic PV measurement, using the test system . We show that systematic errors associated with our technique can be suppressed to at least the level of the present statistical sensitivity. With hours of data, we measure the matrix element, , of the NSD-PV interaction with uncertainty Hz, for each of two configurations where must have different signs. This sensitivity would be sufficient to measure NSD-PV effects of the size anticipated across a wide range of nuclei.
Cite
@article{arxiv.1711.01988,
title = {Measuring Nuclear Spin Dependent Parity Violation With Molecules: Experimental Methods and Analysis of Systematic Errors},
author = {Emine Altuntas and Jeffrey Ammon and Sidney B. Cahn and David DeMille},
journal= {arXiv preprint arXiv:1711.01988},
year = {2018}
}
Comments
25 pages, 15 figures, This longer article provides more details about our experimental techniques, measurement methods and analysis of the systematic uncertainty described briefly in the short version in arXiv:1801.05316