Issue 35, 2018, Issue in Progress

Preparation and performance of electrically conductive Nb-doped TiO2/polyaniline bilayer coating for 316L stainless steel bipolar plates of proton-exchange membrane fuel cells

Abstract

A bilayer coating composed of an inner layer of Nb-doped TiO2 obtained by the sol–gel method and an external polyaniline layer with small SO42− groups obtained by galvanostatic deposition was prepared to protect 316L stainless steel bipolar plates of proton-exchange membrane fuel cells. The corrosion resistances of bare 316L and 316L with single polyaniline coating and Nb-doped TiO2/polyaniline bilayer coating were investigated. The experimental results indicated that both single and bilayer coatings increased the corrosion potential and decreased the corrosion current density compared with bare 316L stainless steel. A thirty-day exposure experiment indicated that the Nb-doped TiO2/polyaniline bilayer showed high stability, and it protected 316L more effectively from the penetration of the corrosive ions.

Graphical abstract: Preparation and performance of electrically conductive Nb-doped TiO2/polyaniline bilayer coating for 316L stainless steel bipolar plates of proton-exchange membrane fuel cells

Article information

Article type
Paper
Submitted
12 Mar 2018
Accepted
30 Apr 2018
First published
25 May 2018
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2018,8, 19426-19431

Preparation and performance of electrically conductive Nb-doped TiO2/polyaniline bilayer coating for 316L stainless steel bipolar plates of proton-exchange membrane fuel cells

Y. Wang, S. Zhang, Z. Lu, P. Wang, X. Ji and W. Li, RSC Adv., 2018, 8, 19426 DOI: 10.1039/C8RA02161A

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