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Publication
Featured researches published by Todd C. Monson.
Journal of ceramic science and technology | 2015
Nelson S. Bell; Todd C. Monson; Christopher Diantonio; Yiquan Wu
The use of colloidal processing principles in the formation of ceramic materials is well appreciated for developing homogeneous material properties in sintered products, enabling novel forming techniques for porous ceramics or 3D printing, and controlling microstructure to enable optimized material properties. The solution processing of electronic ceramic materials often involves multiple cationic elements or dopants to affect microstructure and properties. Material stability must be considered through the steps of colloidal processing to optimize desired component properties. This review provides strategies for preventing material degradation in particle synthesis, milling processes, and dispersion, with case studies of consolidation using spark plasma sintering of these systems. The prevention of multication corrosion in colloidal dispersions can be achieved by utilizing conditions similar to the synthesis environment or by the development of surface passivation layers. The choice of dispersing surfactants can be related to these surface states, which are of special importance for nanoparticle systems. A survey of dispersant chemistries related to some common synthesis conditions is provided for perovskite systems as an example. These principles can be applied to many colloidal systems related to electronic and optical applications.
Archive | 2009
Tyler E. Stevens; Christopher Brian DiAntonio; Pin Yang; Tom P. Chavez; Michael R. Winter; Todd C. Monson; Alexander William Roesler; Benjamin D. Fellows
This late start RTBF project started the development of barium titanate (BTO)/glass nanocomposite capacitors for future and emerging energy storage applications. The long term goal of this work is to decrease the size, weight, and cost of ceramic capacitors while increasing their reliability. Ceramic-based nanocomposites have the potential to yield materials with enhanced permittivity, breakdown strength (BDS), and reduced strain, which can increase the energy density of capacitors and increase their shot life. Composites of BTO in glass will limit grain growth during device fabrication (preserving nanoparticle grain size and enhanced properties), resulting in devices with improved density, permittivity, BDS, and shot life. BTO will eliminate the issues associated with Pb toxicity and volatility as well as the variation in energy storage vs. temperature of PZT based devices. During the last six months of FY09 this work focused on developing syntheses for BTO nanoparticles and firing profiles for sintering BTO/glass composite capacitors.
Archive | 2013
Christopher Brian DiAntonio; Thomas P Chavez; Bernadette A. Hernandez-Sanchez; Todd C. Monson; Alexander William Roesler
Archive | 2013
Erika C. Vreeland; Benjamin D. Fellows; Gretchen Bronwyn Schober; Todd C. Monson; Bradley G. Hance; Dale L. Huber; Andrew D. Price
Archive | 2013
Christopher Brian DiAntonio; Thomas P Chavez; Todd C. Monson; Yiquan Wu
Archive | 2012
Dale L. Huber; Erika C. Vreeland; Gretchen Bronwyn Schober; Todd C. Monson
Archive | 2012
Christopher Brian DiAntonio; Thomas P Chavez; Bernadette A. Hernandez-Sanchez; Todd C. Monson; Alexander William Roesler; David A. Garcia
Archive | 2012
Christopher Brian DiAntonio; Todd C. Monson; Thomas P Chavez
Archive | 2012
Dale L. Huber; Erika C. Vreeland; Andrew D. Price; Todd C. Monson; Debbie M. Lovato; Richard S. Larson; Edward R. Flynn
Archive | 2011
Christopher Brian DiAntonio; Todd C. Monson; Michael R. Winter; Thomas P Chavez; Pin Yang