CA2139604A1

Ion Transport Membranes with Catalyzed Dense Layer

Abstract

The present invention relates to surface catalyzed ion transport membranes which demonstrate superior oxygen flux. The membranes comprise a dense multicomponent metallic oxide layer having a first surface and a second surface wherein the first surface is coated with a catalyst such as a metal or an oxide of a metal selected from Groups II, V, VI, VII, VIII, IX, X, XI, XV and the F Block lanthanides of the Periodic Table of the Elements. One or more porous layers formed from a mixed conducting multicomponent metallic oxide or a material which is not mixed conducting under process operating conditions may be formed contiguous to the second surface of the dense layer. The claimed membranes are capable of separating oxygen from oxygen-containing gaseous mixtures.

CA2139604A1, drawing sheet 1
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Projected expiry passed 5 January 2015, 11.7 years ago.

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49 claims: 3 independent, 46 dependent

  1. 1
    -28THE EMBODIMENTS OF THE INVENTION IN WHICH AN EXCLUSIVE PROPERTY OR PRIVILEGE IS CLAIMED ARE DEFINED AS FOLLOWS:1. An ion transport membrane comprising a dense mixed conducting multicomponent metallic oxide layer having a first surface and a second surface wherein the first surface is coated with a catalyst
  2. 10
    An ion transport membrane comprising a dense mixed conducting multicomponent metallic oxide layer having a first surface contiguous to a porous layer and a second surface which is coated with a catalyst.
  3. 28
    An ion transport membrane comprising a mixed conducting multicomponent metallic oxide dense layer having a first surface which is coated with a metallic catalyst and a second surface contiguous to a plurality of porous layers, each respective porous layer having a discrete average pore radius wherein the average pore radius of each respective porous layer is larger than the average pore radius of the preceding porous layer as function of distance from the dense layer.