Microstructural Control of Colloidal-Based Ceramics by Directional Solidification Under Weak Magnetic Fields

The use of weak magnetic fields to control the microstructural evolution of colloidal‐based systems in conjunction with directional solidification is demonstrated as a convenient processing route to fabricate anisotropic ceramic scaffolds with complex microarchitectures. A variety of graded and alig...

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Bibliographic Details
Published inJournal of the American Ceramic Society Vol. 99; no. 6; pp. 1917 - 1926
Main Authors Porter, Michael M., Niksiar, Pooya, McKittrick, Joanna
Format Journal Article
LanguageEnglish
Published Columbus Blackwell Publishing Ltd 01.06.2016
Wiley Subscription Services, Inc
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Summary:The use of weak magnetic fields to control the microstructural evolution of colloidal‐based systems in conjunction with directional solidification is demonstrated as a convenient processing route to fabricate anisotropic ceramic scaffolds with complex microarchitectures. A variety of graded and aligned microstructures were formed by applying external static magnetic fields oriented radially, axially, and transversely with respect to the solidification direction of freezing slurries containing micro/nanoparticles of ZrO2 and Fe3O4. The graded structures, formed by the radial and axial fields, resemble core–shell architectures composed of dense outer perimeters surrounding porous inner cores. The aligned structures, formed by transverse fields, exhibit two modes of microstructural alignment: lamellar walls aligned by the growing ice crystals and mineral bridges aligned by the magnetic fields. The alignment of mineral bridges that connect adjacent lamellae, provide these scaffolds enhanced strength and stiffness when compressed parallel to their orientation (parallel to the direction of the magnetic field).
Bibliography:ark:/67375/WNG-C96MGF4T-3
ArticleID:JACE14183
National Science Foundation - No. 1507978
istex:D4569989AEE0786A028ED9EDE7632EEB7E29DCE5
Clemson University
ObjectType-Article-1
SourceType-Scholarly Journals-1
ObjectType-Feature-2
content type line 23
ISSN:0002-7820
1551-2916
DOI:10.1111/jace.14183