| Literature DB >> 25302900 |
Anita Zeidler1, Kamil Wezka1, Ruth F Rowlands1, Dean A J Whittaker1, Philip S Salmon1, Annalisa Polidori1, James W E Drewitt2, Stefan Klotz3, Henry E Fischer4, Martin C Wilding5, Craig L Bull6, Matthew G Tucker6, Mark Wilson7.
Abstract
A combination of in situ high-pressure neutron diffraction at pressures up to 17.5(5) GPa and molecular dynamics simulations employing a many-body interatomic potential model is used to investigate the structure of cold-compressed silica glass. The simulations give a good account of the neutron diffraction results and of existing x-ray diffraction results at pressures up to ~60 GPa. On the basis of the molecular dynamics results, an atomistic model for densification is proposed in which rings are "zipped" by a pairing of five- and/or sixfold coordinated Si sites. The model gives an accurate description for the dependence of the mean primitive ring size ⟨n⟩ on the mean Si-O coordination number, thereby linking a parameter that is sensitive to ordering on multiple length scales to a readily measurable parameter that describes the local coordination environment.Entities:
Year: 2014 PMID: 25302900 DOI: 10.1103/PhysRevLett.113.135501
Source DB: PubMed Journal: Phys Rev Lett ISSN: 0031-9007 Impact factor: 9.161