High resolution miniature dilatometer based on an atomic force microscope piezocantilever

Thermal expansion, or dilation, is closely related to the specific heat, and provides useful information regarding material properties. The accurate measurement of dilation in confined spaces coupled with other limiting experimental environments such as low temperatures and rapidly changing high mag...

Full description

Saved in:
Bibliographic Details
Published inReview of scientific instruments Vol. 80; no. 11; p. 116101
Main Authors Park, J-H, Graf, D, Murphy, T P, Schmiedeshoff, G M, Tozer, S W
Format Journal Article
LanguageEnglish
Published United States 01.11.2009
Online AccessGet more information

Cover

Loading…
More Information
Summary:Thermal expansion, or dilation, is closely related to the specific heat, and provides useful information regarding material properties. The accurate measurement of dilation in confined spaces coupled with other limiting experimental environments such as low temperatures and rapidly changing high magnetic fields requires a new sensitive millimeter size dilatometer that has little or no temperature and field dependence. We have designed an ultracompact dilatometer using an atomic force microscope piezoresistive cantilever as the sensing element and demonstrated its versatility by studying the charge density waves in alpha uranium to high magnetic fields (up to 31 T). The performance of this piezoresistive dilatometer was comparable to that of a titanium capacitive dilatometer.
ISSN:1089-7623
DOI:10.1063/1.3258143