| Literature DB >> 34916709 |
J Nsofini1,2, D Sarenac1,2, K Ghofrani2,3, M G Huber4, M Arif4, D G Cory2,3,5,6, D A Pushin1,2.
Abstract
We provide a quantum information description of a proposed five-blade neutron interferometer geometry and show that it is robust against low-frequency mechanical vibrations and dephasing due to the dynamical phase. The extent to which the dynamical phase affects the contrast in a neutron interferometer is experimentally shown. In our model, we consider the coherent evolution of a neutron wavepacket in an interferometer crystal blade and simulate the effect of mechanical vibrations and momentum spread of the neutron through the interferometer. The standard three-blade neutron interferometer is shown to be immune to dynamical phase noise but prone to noise from mechanical vibrations, and the decoherence free subspace four-blade neutron interferometer is shown to be immune to mechanical vibration noise but prone to noise from the dynamical phase. Here, we propose a five-blade neutron interferometer and show that it is immune to both low-frequency mechanical vibration noise and dynamical phase noise.Entities:
Year: 2017 PMID: 34916709 PMCID: PMC8672796 DOI: 10.1063/1.4996866
Source DB: PubMed Journal: J Appl Phys ISSN: 0021-8979 Impact factor: 2.546