[1] Hosseini M G, Momeni M M. UVcleaning properties of Pt nanoparticle decorated titania nanotubes in the electrooxidation of methanol: an antipoisoning and refreshable electrode [J]. Electrochimica Acta, 2012, 70: 1-9.
[2] Singh R N, Singh A. Electrocatalytic activity of binary and ternary composite films of Pd, MWCNT, and Ni for ethanol electrooxidation in alkaline solutions [J]. Carbon, 2009, 47(1): 271-278.
[3] Zhang S, Shao Y, Liao H, et al. Graphene decorated with PtAu alloy nanoparticles: facile synthesis and promising application for formic acid oxidation [J]. Chemistry of Materials, 2011, 23(5): 1079-1081.
[4] Cheng F, Chen J. Metalair batteries: from oxygen reduction electrochemistry to cathode catalysts [J]. Chemical Society Reviews, 2012, 41(6): 2172-2192.
[5] Ren M, Zou L, Yuan T, et al. Novel palladium flowerlike nanostructured networks for electrocatalytic oxidation of formic acid [J]. Journal of Power Sources, 2014, 267: 527-532.
[6] Rice C, Ha S, Masel R I, et al. Direct formic acid fuel cells [J]. Journal of Power Sources, 2002, 111(1): 83-89.
[7] Chang J, Li S, Feng L, et al. Effect of carbon material on Pd catalyst for formic acid electrooxidation reaction [J]. Journal of Power Sources, 2014, 266: 481-487.
[8] Wang Y, Liu H, Wang L, et al. Pd catalyst supported on a chitosanfunctionalized largearea 3D reduced graphene oxide for formic acid electrooxidation reaction [J]. Journal of Materials Chemistry A, 2013, 1(23): 6839-6848.[9] Xu C, Hao Q, Duan H. Nanoporous PdPt alloy as a highly active electrocatalyst for formic acid oxidation [J]. Journal of Materials Chemistry A, 2014, 2(23): 8875-8880.
[10] Kristian N, Yan Y, Wang X. Highly efficient submonolayer Ptdecorated Au nanocatalysts for formic acid oxidation [J]. Chem Commun, 2008 (3): 353-355.