Physical Chemistry Chemical Physics 2015-07-14

Negligible degradation upon in situ voltage cycling of a PEMFC using an electrospun niobium-doped tin oxide supported Pt cathode.

Iuliia Savych, Surya Subianto, Yannick Nabil, Sara Cavaliere, Deborah Jones, Jacques Rozière

Index: Phys. Chem. Chem. Phys. 17 , 16970-6, (2015)

Full Text: HTML

Abstract

Novel platinum-catalysed, corrosion-resistant, loose-tube-structured electrocatalysts for proton exchange membrane fuel cells have been obtained using single-needle electrospinning associated with a microwave-assisted polyol method. Monodisperse platinum particles supported on Nb-SnO2 demonstrated higher electrochemical stability than conventional Pt/C electrodes during ex situ potential cycling and comparable activity in the oxygen reduction reaction. In situ fuel cell operation under accelerated stress test conditions of a membrane electrode assembly elaborated using a Pt/C anode and Pt/Nb-SnO2 cathode confirmed that the voltage loss is significantly lower for the novel cathode than for an MEA prepared using conventional Pt/C supported electrocatalysts. Furthermore, the Nb-SnO2 stabilised the supported platinum nanoparticles against dissolution, migration and reprecipitation in the membrane. Pt/Nb-SnO2 loose-tubes constitute a mitigation strategy for two known degradation mechanisms in PEMFC: corrosion of the carbon support at the cathode, and dissolution of Pt at high cell voltages.

Related Compounds

Structure Name/CAS No. Articles
Sulfuric acid Structure Sulfuric acid
CAS:7664-93-9
Sodium hydroxide Structure Sodium hydroxide
CAS:1310-73-2
Ethanol Structure Ethanol
CAS:64-17-5
Hydrogen peroxide Structure Hydrogen peroxide
CAS:7722-84-1
nitric acid Structure nitric acid
CAS:7697-37-2
3-Ethyl-2,4-pentanedione Structure 3-Ethyl-2,4-pentanedione
CAS:1540-34-7
N,N-Dimethylformamide Structure N,N-Dimethylformamide
CAS:68-12-2
Ethylene glycol Structure Ethylene glycol
CAS:107-21-1
Tin(II) chloride Structure Tin(II) chloride
CAS:7772-99-8