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Characterization of Fe/KClO4 heat powders and pellets

Proposed for publication in Journal Power Sources.

Odinek, Judy G.; Reinhardt, Frederick W.

Pellets of Fe/KClO{sub 4} mixtures are used as a heat source for thermally activated ('thermal') batteries. They provide the energy necessary for melting the electrolyte and bringing the battery stack to operating temperature. The effects of morphology of the Fe and the heat-pellet density and composition on both the physical properties (flowability, pelletization, and pellet strength) and the pyrotechnic performance (burn rate and ignition sensitivity) were examined using several commercial sources of Fe.

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Development of high-temperature batteries for use in geothermal and oil/gas boreholes

Transactions - Geothermal Resources Council

Guidotti, Ronald A.; Normann, Randy A.; Reinhardt, Frederick W.; Odinek, Judy G.

The drilling industry continues to drill deeper and hotter wells to support fossil fuel exploration, production and geothermal power production. Natural gas well temperatures in excess of 185°C are becoming increasingly common and geothermal power production wells can reach 350°C. Electronics manufacturers are developing new high-temperature electronic devices capable of operating at 225°C for five years. Most of these components continue to operate up to 300°C. This paper discusses efforts to develop high-temperature batteries to meet the power needs of new high-temperature electronic systems.

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Superlattices of platinum and palladium nanoparticles

Journal Physical Chem B

Martin, James E.; Wilcoxon, Jess P.; Odinek, Judy G.; Provencio, P.N.

The authors have used a nonionic inverse micelle synthesis technique to form nanoclusters of platinum and palladium. These nanoclusters can be rendered hydrophobic or hydrophilic by the appropriate choice of capping ligand. Unlike Au nanoclusters, Pt nanoclusters show great stability with thiol ligands in aqueous media. Alkane thiols, with alkane chains ranging from C{sub 6} to C{sub 18} were used as hydrophobic ligands, and with some of these they were able to form 2-D and/or 3-D superlattices of Pt nanoclusters as small as 2.7 nm in diameter. Image processing techniques were developed to reliably extract from transmission electron micrographs (TEMs) the particle size distribution, and information about the superlattice domains and their boundaries. The latter permits one to compute the intradomain vector pair correlation function of the particle centers, from which they can accurately determine the lattice spacing and the coherent domain size. From these data the gap between the particles in the coherent domains can be determined as a function of the thiol chain length. It is found that as the thiol chain length increases, the gaps between particles within superlattice domains increases, but more slowly than one might expect, possibly indicating thiol chain interdigitation.

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Control of the interparticle spacing in gold nanoparticle superlattices

Journal of Physical Chem B

Martin, James E.; Wilcoxon, Jess P.; Odinek, Judy G.; Provencio, P.N.

The authors have investigated the formation of 2-D and 3-D superlattices of Au nanoclusters synthesized in nonionic inverse micelles, and capped with alkyl thiol ligands, with alkane chains ranging from C{sub 6} to C1{sub 18}. The thiols are found to play a significant role in the ripening of these nanoclusters, and in the formation of superlattices. Image processing techniques were developed to reliably extract from transmission electron micrographs (TEMs) the particle size distribution, and information about the superlattice domains and their boundaries. The latter permits one to compute the intradomain vector pair correlation function, from which one can accurately determine the lattice spacing and the coherent domain size. From these data the gap between the particles in the coherent domains can be determined as a function of the thiol chain length. It is found that as the thiol chain length increases, the nanoclusters become more polydisperse and larger, and the gaps between particles within superlattice domains increases. Annealing studies at elevated temperatures confirm nanocluster ripening. Finally, the effect of the particle gaps on physical properties is illustrated by computing the effective dielectric constant, and it is shown that the gap size now accessible in superlattices is rather large for dielectric applications.

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5 Results
5 Results