SYNCHROTON X-RAY DIFFRACTION STUDY OF THE STRUCTURE AND DEHYDRATION BEHAVIOR OF TODOROKITE

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dc.contributor.author Post J.E.
dc.contributor.author Heaney P.J.
dc.contributor.author Hanson J.
dc.date.accessioned 2022-01-02T07:44:06Z
dc.date.available 2022-01-02T07:44:06Z
dc.date.issued 2003
dc.identifier https://www.elibrary.ru/item.asp?id=7600098
dc.identifier.citation American Mineralogist, 2003, 88, 1, 142
dc.identifier.issn 0003-004X
dc.identifier.uri https://repository.geologyscience.ru/handle/123456789/34102
dc.description.abstract Real-time, temperature-resolved synchrotron powder X-ray diffraction data and Rietveld refinements were used to investigate the behavior of the todorokite structure from 100 to 820 K. At 298 K, the lower valence cations, such as Mn3+, occupy large octahedral sites at the edges of the triple chains, and four water/cation sites are in the tunnels. In our heating experiments in vacuum, todorokite began to break down at -450 K and fully decomposed by 620 K, at which point hausmannite started to form. Our results suggest that the loss Of 02 accompanied the reduction of Mn 4, to Mn3+ and Mn2+, and these reactions impelled a breakdown of the octahedral framework and the subsequent release of the tunnel water molecules. Rietveld refinements revealed a gradual thermal expansion of the todorokite structure to -450 K. At higher temperatures, the unit-cell volume gradually decreased, primarily as a result of a decrease in c, and the decline in Beta with increasing temperature was accelerated. A mechanism for forming the inverse spinel hausmannite structure from todorokite is presented.
dc.subject X RAYS
dc.subject STUDIES
dc.subject MINERALOGY
dc.subject todorokite
dc.title SYNCHROTON X-RAY DIFFRACTION STUDY OF THE STRUCTURE AND DEHYDRATION BEHAVIOR OF TODOROKITE
dc.type Статья


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