[1] SIMKA W,PIOTROWSKI J,ROBAK A,et al. Electrochemical treatment of aqueous solutions containing urea[J]. Journal of Applied Electrochemistry,2009,39(7):1137-1143.
[2] LAN R,TAO S,IRVINE J T S. A direct urea fuel cell-power from fertiliser and waste[J]. Energy & Environmental Science,2010,3(4):438.
[3] TERBLANCHE A. Health-hazards of nitrate in drinking-water[J]. Water SA,1991,17(1):77-82.
[4] YAN W,WANG D,BOTTE G G. Electrochemical decomposition of urea with Ni-based catalysts[J]. Applied Catalysis B-Environmental, 2012,127:221-226.
[5] BOGGS B K,KING R L,BOTTE G G. Urea electrolysis:direct hydrogen production from urine[J]. Chemical Communications,2009(32):4859-4861.
[6] VEDHARATHINAM V, BOTTE G G. Understanding the electro-catalytic oxidation mechanism of urea on nickel electrodes in alkaline medium[J]. Electrochimica Acta,2012,81:292-300.
[7] VEDHARATHINAM V,BOTTE G G. Direct evidence of the mechanism for the electro-oxidation of urea on Ni(OH)2 catalyst in alkaline medium[J]. Electrochimica Acta,2013,108:660-665.
[8] LAN R,TAO S W. Preparation of nano-sized nickel as anode catalyst for direct urea and urine fuel cells[J]. Journal of Power Sources, 2011,196(11):5021-5026.
[9] YAN W,WANG D,DIAZ L A,et al. Nickel nanowires as effective catalysts for urea electro-oxidation[J]. Electrochimica Acta,2014, 134:266-271.
[10] GUO F,YE K,CHENG K,et al. Preparation of nickel nanowire arrays electrode for urea electrooxidation in alkaline medium[J]. Journal of Power Sources,2015,278:562-568.
[11] COOPER M, BOTTE G G. Hydrogen production from the electro-oxidation of ammonia catalyzed by platinum and rhodium on raney nickel substrate[J]. Journal of the Electrochemical Society, 2006,153(10):A1894-A1901.
[12] LARESE C,GRANADOS M L,GALISTEO F C,et al. TWC deactivation by lead:a study of the Rh/CeO2 system[J]. Applied Catalysis B-Environmental,2006,62(1/2):132-143.
[13] KING R L,BOTTE G G. Investigation of multi-metal catalysts for stable hydrogen production via urea electrolysis[J]. Journal of Power Sources,2011,196(22):9579-9584.
[14] MILLER A T, HASSLER B L, BOTTE G G. Rhodium electrodeposition on nickel electrodes used for urea electrolysis[J]. Journal of Applied Electrochemistry,2012,42(11):925-934.
[15] XU W,ZHANG H,LI G,et al. Nickel-cobalt bimetallic anode catalysts for direct urea fuel cell[J]. Scientific Reports,2014,4:5863.
[16] YAN W,WANG D,BOTTE G G. Template-assisted synthesis of ni-co bimetallic nanowires for urea electrocatalytic oxidation[J]. Journal of Applied Electrochemistry,2015,45:1217-1222.
[17] MCLNTYRE D R,BURSTEIN G T,VOSSEN A. Effect of carbon monoxide on the electrooxidation of hydrogen by tungsten carbide[J]. Journal of Power Sources,2002,107:67-73.
[18] WANG L,LI M T,HUANG Z Y,et al. Ni-WC/C nanocluster catalysts for urea electrooxidation[J]. Journal of Power Sources, 2014,264:282-289.
[19] KAMATH P V,DIXIT M,INDIRA L,et al. Stabilized alpha-Ni(OH)2 as electrode material for alkaline secondary cells[J]. Journal of the Electrochemical Society,1994,141(11):2956-2959.
[20] DAN W,WEI Y,BOTTE G G. Exfoliated nickel hydroxide nanosheets for urea electrolysis[J]. Electrochemistry Communications,2011,13(10):1135-1138.
[21] JI R Y,CHAN D S,JOW J J,et al. Formation of open-ended nickel hydroxide nanotubes on three-dimensional nickel framework for enhanced urea electrolysis[J]. Electrochemistry Communications, 2013,29:21-24.
[22] WU M S,JI R Y,ZHENG Y R. Nickel hydroxide electrode with a monolayer of nanocup arrays as an effective electrocatalyst for enhanced electrolysis of urea[J]. Electrochimica Acta,2014,144:194-199.
[23] VIDOTTI M,SILVA M R,SALVADOR R P,et al. Electrocatalytic oxidation of urea by nanostructured nickel/cobalt hydroxide electrodes[J]. Electrochimica Acta,2008,53(11):4030-4034.
[24] YAN W,WANG D,BOTTE G G. Nickel and cobalt bimetallic hydroxide catalysts for urea electro-oxidation[J]. Electrochimica Acta,2012,61:25-30.
[25] WU M,LIN G,YANG R. Hydrothermal growth of vertically-aligned ordered mesoporous nickel oxide nanosheets on three-dimensional nickel framework for electrocatalytic oxidation of urea in alkaline medium[J]. Journal of Power Sources,2014,272:711-718.
[26] DING R,QI L,JIA M J,et al. Facile synthesis of mesoporous spinel NiCo2O4 nanostructures as highly efficient electrocatalysts for urea electro-oxidation[J]. Nanoscale,2014,6:1369-1376.
[27] LIANG Y,LIU Q,ASIRI A M,et al. Enhanced electrooxidation of urea using NiMoO4 center dot xH2O nanosheet arrays on Ni foam as anode[J]. Electrochimica Acta,2015,153:456-460.
[28] WANG D,YAN W,VIJAPUR S H,et al. Electrochemically reduced graphene oxide-nickel nanocomposites for urea electrolysis[J]. Electrochimica Acta,2013,89:732-736.
[29] WANG L,DU T T,CHENG J,et al. Enhanced activity of urea electrooxidation on nickel catalysts supported on tungsten carbides/carbon nanotubes[J]. Journal of Power Sources,2015,280:550-554.
[30] YE K,ZHANG D,GUO F,et al. Highly porous nickel@carbon sponge as a novel type of three-dimensional anode with low cost for high catalytic performance of urea electro-oxidation in alkaline medium[J]. Journal of Power Sources,2015,283:408-415.
[31] MEDWAY S L,LUCAS C A,KOWAL A,et al. In situ studies of the oxidation of nickel electrodes in alkaline solution[J]. Journal of Electroanalytical Chemistry,2006,587(1):172-181. |