Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7744592 | Solid State Ionics | 2018 | 7 Pages |
Abstract
Fuel electrodes on proton-conducting ceramics, such as BaZr0.9-xCexY0.1O3-δ (BZCY), must be stable at high temperatures in reducing and hydrocarbon-containing gases. This work investigated thin Cu-based electrodes (~1â¯Î¼m) deposited by electroless plating on tubular substrates composed of a dense BZCY film (~25â¯Î¼m) on a porous Ni-BZCY support. Ru, Pd, and Cu were studied as activation catalysts and the performance of those electrodes (Ru/Cu, Pd/Cu, and Cu/Cu) was evaluated during the galvanic hydrogen pumping at 700â¯Â°C in reducing and hydrocarbon-containing feeds. The hydrogen flux was measured with a stoichiometric titration experiment and the highest flux (3.1â¯NmL·cmâ2·minâ1) was obtained with Ru/Cu at 400â¯mA·cmâ2. The metric to compare the electrodes was the power required to pump 1â¯NmL H2·minâ1 at 40â¯mA·cmâ2. Those numbers for Ru/Cu, Pd/Cu, and Cu/Cu electrodes in a 10% H2 in Ar feed were 34, 22, and 268â¯mW/(NmL H2·minâ1). Due to the order of magnitude higher power requirement for the pure Cu electrode, only the Ru/Cu and Pd/Cu electrodes were investigated further and their performance was found to deteriorate in the presence of a predominantly methane-feed. The post mortem microstructural analysis showed that the Ru/Cu and Pd/Cu electrodes did reorganize significantly under bias and coke formation was only observed on the BZCY membrane.
Keywords
Related Topics
Physical Sciences and Engineering
Chemistry
Electrochemistry
Authors
Neil S. Patki, Anthony Manerbino, J. Douglas Way, Sandrine Ricote,