NOTICE: Due to a lapse in annual appropriations, most of this website is not being updated. Learn more.
Form submissions will still be accepted but will not receive responses at this time. Sections of this site for programs using non-appropriated funds (such as NVLAP) or those that are excepted from the shutdown (such as CHIPS and NVD) will continue to be updated.
An official website of the United States government
Here’s how you know
Official websites use .gov
A .gov website belongs to an official government organization in the United States.
Secure .gov websites use HTTPS
A lock (
) or https:// means you’ve safely connected to the .gov website. Share sensitive information only on official, secure websites.
Order and Disorder in the Local and Long-Range Structure of the Spin-Glass Pyrochlore, Tb2Mo2Od7^
Published
Author(s)
Yu Jiang, Ashfia Huq, Corwin H. Booth, Georg Ehlers, John E. Greedan, Jason S. Gardner
Abstract
To understand the origin of the spin-glass state in molybdate pyrochlores, the structure of Tb2Mo2O7 is investigated using two techniques: the long-range lattice structure was measured using neutron powder diffraction (NPD), and the local structure information was obtained from extended x-ray absorption fine structure (EXAFS) measurements. While the long-range structure appears well ordered, enhanced mean-squared site displacements on the Mo and O(1) sites indicate some disorder exists. Likewise, the local structure measurements indicate nearest-neighbor disorder exists, similar to that found in the related spin-glass pyrochlore, Y2Mo2O7. Although the freezing temperature in Tb2Mo2O7, 25 K, is slightly higher than in Y2Mo2O7, 22 K, the degree of local bond disorder is actually less in Tb2Mo2O7. This apparaent contradiction is considered in light of the interactions involved in the freezing process.
Jiang, Y.
, Huq, A.
, Booth, C.
, Ehlers, G.
, Greedan, J.
and Gardner, J.
(2011),
Order and Disorder in the Local and Long-Range Structure of the Spin-Glass Pyrochlore, Tb<sub>2</sub>Mo<sub>2O</sub>d7^, Journal of Physics Condensed Matter, [online], https://tsapps.nist.gov/publication/get_pdf.cfm?pub_id=907639
(Accessed October 25, 2025)