This disclosure relates to a stable, high activity platinum catalyst for use in a fuel cell or other catalyst applications.
Fuel cells are commonly used for generating electric current. For example, a single fuel cell typically includes an anode catalyst, a cathode catalyst and an electrolyte between the anode and cathode catalysts for generating electric current in a known electrode chemical reaction between a reactant and an oxidant.
One issue encountered with fuel cells is the operational efficiency of the catalyst. For example, electrochemical activity at the cathode catalyst is one parameter that controls the efficiency. An indication of the electrochemical activity is the rate of electrochemical reaction of the oxidant at the cathode catalyst. Platinum has been used as a cathode catalyst. However, platinum is expensive and has sluggish kinetics of oxygen reduction reaction, which hinders the commercialization of low temperature fuel cells.
A fuel cell catalyst is disclosed that includes a support having a catalyst core arranged on the support. In one example, the core includes palladium. A layer, which is gold in one example, is arranged on the core. A platinum overlayer is arranged on the gold layer. The intermediate gold layer greatly increases the mass activity of the platinum compared to catalysts in which platinum is deposited directly onto the palladium without any intermediate gold layer.
A method of manufacturing the above fuel cell catalyst may include depositing a copper layer onto the palladium core to facilitate later deposition of the gold layer. In one example, a copper monolayer is replaced with a gold submonolayer by the reaction between Au3+ and Cu.
Another method of manufacturing the above fuel cell catalyst may include depositing an Au layer onto the palladium core by the reaction between Au3+ and Pd.
The disclosure can be further understood by reference to the following detailed description when considered in connection with the accompanying drawings wherein:
An example catalyst 10 according to one aspect of the disclosure is illustrated in
The catalyst 10 includes an outer or overlayer 18 of platinum, which includes at least one of a monolayer, bilayer or trilayer. The overlayer will normally be comprised of zerovalent platinum atoms. Rather than depositing platinum directly onto the palladium layer 14 without any intermediate material or layer, an intermediate layer 16 is provided between the palladium layer 14 and platinum overlayer 18. In one example, a transition metal is deposited onto the palladium layer 14. For example, the transition metal is gold.
In one example, the intermediate layer 16 is a submonolayer of gold. That is, the gold submonolayer does not completely cover the palladium layer 14. In one example, the palladium layer 14 has approximately 5-80% of its surface covered with gold. In another example, the palladium layer 14 has approximately 20-70% of its surface covered with gold. For example, the palladium layer 14 has approximately two thirds of its surface covered with gold. An overlayer of platinum is deposited onto the gold submonolayer, as illustrated in
Another example manufacturing method to produce the catalyst 10 is illustrated in
Another example manufacturing method to produce the catalyst 10 is illustrated in
Although an example embodiment has been disclosed, a worker of ordinary skill in this art would recognize that certain modifications would come within the scope of the claims. For that reason, the following claims should be studied to determine their true scope and content.
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/US09/69562 | 12/28/2009 | WO | 00 | 3/22/2012 |