| Literature DB >> 28294116 |
Xiaoqing Tu1, Guangai Sun1, Jian Gong1, Lijuan Liu1, Yong Ren1,2, Penglin Gao1, Wenzhao Wang1, H Yan1.
Abstract
Due to quantum coherence, nanoparticles have very large cross sections when scattering with very cold or Ultracold Neutrons (UCN). By calculating the scattering cross section quantum mechanically at first, then treating the nanoparticles as classical objects when including the rotational effects, we can derive the associated energy transfer. We find that rotational effects could play an important role in slowing down UCN. In consequence, the slowing down efficiency can be improved by as much as ~40%. Since thermalization of neutrons with the moderator requires typically hundreds of collisions between them, a ~40% increase of the efficiency per collision could have a significant effect. Other possible applications, such as neutrons scattering with nano shells and magnetic particles,and reducing the systematics induced by the geometric phase effect using nanoparticles in the neutron Electric Dipole Moment (nEDM), are also discussed in this paper.Entities:
Year: 2017 PMID: 28294116 PMCID: PMC5353586 DOI: 10.1038/srep44070
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1neutron wave scattered by a nanoparticle.
Figure 2Translation, rotation, and total relative mean energy loss per collision, as a function of neutron wave vector, for the diamond nanoparticle with radius of 1 nm.
Figure 3The ratio of energy loss due to rotation degrees of freedom to translation of the 1 nm dimond nano sphere.
Figure 4Translation, rotation, and total relative mean energy loss per collision, as a function of neutron velocity, for C60.
Figure 5Nuclear, magnetic and the total scattering cross sections of Co nanoparticle with radius of 1 nm.