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US Patent 7612011 Ceria-based mixed-metal oxide structure, including method of making and use

Patent 7612011 was granted and assigned to UTC Power on November, 2009 by the United States Patent and Trademark Office.

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Patent
Patent

Patent attributes

Current Assignee
UTC Power
UTC Power
Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
Patent Number
7612011
Date of Patent
November 3, 2009
Patent Application Number
11605515
Date Filed
November 28, 2006
Patent Citations Received
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US Patent 12113199 Ultra high capacity performance battery cell
0
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US Patent 11973224 Battery with acidified cathode and lithium anode
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US Patent 11980869 Zirconia-based aqueous np-dispersion for use in coating filter substrates
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US Patent 12009508 Battery with novel components
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US Patent 11658281 Ultra high capacity performance battery cell
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US Patent 11713705 Nitrous oxide removal catalysts for exhaust systems
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US Patent 11942803 Methods of use of ultra high capacity performance battery cell
0
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US Patent 11962004 Synthesized, surface-functionalized, acidified metal oxide materials for energy storage, catalytic, photovoltaic and sensor applications
0
...
Patent Primary Examiner
‌
Steven Bos
Patent abstract

A homogeneous ceria-based mixed-metal oxide, useful as a catalyst support, a co-catalyst and/or a getter has a relatively large surface area per weight, typically exceeding 150 m2/g, a structure of nanocrystallites having diameters of less than 4 nm, and including pores larger than the nanocrystallites and having diameters in the range of 4 to about 9 nm. The ratio of pore volumes, VP, to skeletal structure volumes, VS, is typically less than about 2.5, and the surface area per unit volume of the oxide material is greater than 320 m2/cm3, for low internal mass transfer resistance and large effective surface area for reaction activity. The mixed metal oxide is ceria-based, includes Zr and or Hf, and is made by a novel co-precipitation process. A highly dispersed catalyst metal, typically a noble metal such as Pt, may be loaded on to the mixed metal oxide support from a catalyst metal-containing solution following a selected acid surface treatment of the oxide support. Appropriate ratioing of the Ce and other metal constituents of the oxide support contribute to it retaining in a cubic phase and enhancing catalytic performance. Rhenium is preferably further loaded on to the mixed-metal oxide support and passivated, to increase the activity of the catalyst. The metal-loaded mixed-metal oxide catalyst is applied particularly in water gas shift reactions as associated with fuel processing systems, as for fuel cells.

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