Title of article :
Pt-based anode catalysts for direct ethanol fuel cells
Author/Authors :
Zhou، نويسنده , , W.J. and Song، نويسنده , , S.Q. and Li، نويسنده , , W.Z. and Sun، نويسنده , , G.Q. and Xin، نويسنده , , Q. and Kontou، نويسنده , , S. and Poulianitis، نويسنده , , Sotiria K. and Tsiakaras، نويسنده , , P.، نويسنده ,
Issue Information :
هفته نامه با شماره پیاپی سال 2004
Abstract :
In the present work, several carbon supported PtSn and PtSnRu catalysts were prepared with different atomic ratios and tested in direct ethanol fuel cells (DEFC) operated at lower temperature (T=90 °C). XRD and TEM results indicate that all of these catalysts consist of uniform nano-sized particles of narrow distribution and the average particle sizes are always less than 3.0 nm. As the content of Sn increases, the Pt lattice parameter becomes longer. Single direct ethanol fuel cell tests were used to evaluate the performance of carbon supported PtSn catalysts for ethanol electro-oxidation. It was found that the addition of Sn can enhance the activity towards ethanol electro-oxidation. It is also found that a single DEFC of Pt/Sn atomic ratio≤2, “Pt1Sn1/C, Pt3Sn2/C, and Pt2Sn1/C’’ shows better performance than those with Pt3Sn1/C and Pt4Sn1/C. But even adopting the least active PtSn catalyst, Pt4Sn1/C, the DEFC also exhibits higher performance than that with the commercial Pt1Ru1/C, which is dominatingly used in PEMFC at present as anode catalyst for both methanol electro-oxidation and CO-tolerance. At 90 °C, the DEFC exhibits the best performance when Pt2Sn1/C is adopted as anode catalysts. This distinct difference in DEFC performance between the catalysts examined here is attributed to the so-called bifunctional mechanism and to the electronic interaction between Pt and Sn. It is thought that −OHads, surface Pt active sites and the ohmic effect of PtSn/C catalyst determines the electro-oxidation activity of PtSn catalysts with different Pt/Sn ratios.
Keywords :
Direct ethanol fuel cells (DEFCs) , Carbon supported PtSn catalysts , Polymer exchange electrolyte
Journal title :
Solid State Ionics
Journal title :
Solid State Ionics