Carbon monoxide tolerant platinum electrocatalysts on niobium doped titania and carbon nanotube composite supports

In the anode of electrochemical cells operating at low temperature, the hydrogen oxidation reaction is susceptible to poisoning from carbon monoxide (CO) which strongly adsorbs on platinum (Pt) catalysts and increases activation overpotential. Adsorbed CO is removed by oxidative processes such as el...

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Veröffentlicht in:Journal of power sources 2014-12, Vol.272, p.845-859
Hauptverfasser: RIGDON, William A, XINYU HUANG
Format: Artikel
Sprache:eng
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Zusammenfassung:In the anode of electrochemical cells operating at low temperature, the hydrogen oxidation reaction is susceptible to poisoning from carbon monoxide (CO) which strongly adsorbs on platinum (Pt) catalysts and increases activation overpotential. Adsorbed CO is removed by oxidative processes such as electrochemical stripping, though cleaning can also cause corrosion. One approach to improve the tolerance of Pt is through alloying with less-noble metals, but the durability of alloyed electrocatalysts is a critical concern. Without sacrificing stability, tolerance can be improved by careful design of the support composition using metal oxides. The bifunctional mechanism is promoted at junctions of the catalyst and metal oxides used in the support. Stable metal oxides can also form strong interactions with catalysts, as is the case for platinum on titania (TiO sub(x)). In this study, niobium (Nb) serves as an electron donor dopant in titania. The transition metal oxides are joined to functionalized multi-wall carbon nanotube (CNT) supports in order to synthesize composite supports. Pt is then deposited to form electrocatalysts which are characterized before fabrication into anodes for tests as an electrochemical hydrogen pump. Comparisons are made between the control from Pt-CNT to Pt-TiO sub(x)-CNT and Pt-Ti sub(0.9)Nb sub(0.9)Nb sub(0.1)O sub(x)-CNT in order to demonstrate advantages.
ISSN:0378-7753
1873-2755
DOI:10.1016/j.jpowsour.2014.09.054