FIELD: chemistry.
SUBSTANCE: method is carried out using, as material of the metal base, a Ni-Al alloy obtained using an energy-efficient self-propagating high-temperature synthesis method, avoids the need to apply additional protective coatings between the metal base and electrode layers to prevent inter-diffusion of materials, since the metal base does not contain Fe or Cr, unlike ferrite stainless steels. Formation of each functional layer of the cell is carried out in a single process step. Formation of a thin-film, less than 20 mcm, electrolyte by magnetron sputtering enables to lower the operating temperature to below 800°C.
EFFECT: longer stability of catalytic properties of the anode and low operating temperature.
4 dwg, 1 ex
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Authors
Dates
2015-12-20—Published
2014-11-12—Filed