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Original Research Papers

Effect of Mo content on porous Ni3Al–Mo electrodes for hydrogen evolution reaction

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Pages 387-393 | Received 27 Mar 2014, Accepted 17 Jul 2014, Published online: 07 Aug 2014

References

  • Solmaz R and Kardas G: ‘Fabrication and characterization of NiCoZn–M (M: Ag, Pd and Pt) electrocatalysts as cathode materials for electrochemical hydrogen production’, Int. J. Hydrogen Energy, 2011, 36, 12079–12087.
  • Zheng Z, Li N, Wang C, Li DY, Meng FY and Zhu YM: ‘Effects of CeO2 on the microstructure and hydrogen evolution property of Ni–Zn coatings’, J. Power Source, 2013, 222, 88–91.
  • Hu WK: ‘Electrocatalytic properties of new electrocatalysts for hydrogen evolution in alkaline water electrolysis’, Int. J. Hydrogen Energy, 2000, 25, 111–118.
  • Metikos-Hukovic M, Grubac Z, Radic N and Tonejc A: ‘Sputter deposited nanocrystalline Ni and Ni–W films as catalysts for hydrogen evolution’, J. Mol. Catal. A: Chem., 2006, 249A, 172–180.
  • Kiani A and Hatami S: ‘Fabrication of platinum coated nanoporous gold film electrode: a nanostructured ultra low platinum loading electrocatalyst for hydrogen evolution reaction’, Int. J. Hydrogen Energy, 2010, 35, 5202–5209.
  • Conway BE and Bai LJ: ‘H2 evolution kinetics at high activity Ni–Mo–Cd electrocoated cathodes and its relation to potential dependence of sorption of H’, Int. J. Hydrogen Energy, 1986, 11, 533–40.
  • Bowen CT, Davis HJ, Henshaw BF, Lachance R, LeRoy RL and Renaoud R: ‘Developments in advanced alkaline water electrolysis’, Int. J. Hydrogen Energy, 1984, 9, 59–66.
  • Tasic GS, Maslovara SP, Zugic DL, Maksic AD and Marceta Kaninski MP: ‘Characterization of the Ni–Mo catalyst formed in situ during hydrogen generation from alkaline water electrolysis’, Int. J. Hydrogen Energy, 2011, 36, 11588–11595.
  • Rosalbino F, Delsante S, Borzone G and Angelini E: ‘Correlation of microstructure and catalytic activity of crystalline Ni–Co–Y alloy electrode for the hydrogen evolution reaction in alkaline solution’, J Alloys Compd, 2007, 429, 270–275.
  • Shervedani RK and Madran AR: ‘Electrocatalytic activities of nanocomposite Ni81P16C3 electrode for hydrogen evolution reaction in alkaline solution by electrochemical impedance spectroscopy’, Int. J. Hydrogen Energy, 2008, 33, 2468–2476.
  • Losiewicz B, Budniok A, Rowinski E, Lagiewka E and Lasia A: ‘The structure, morphology and electrochemical impedance study of the hydrogen evolution reaction on the modified nickel electrodes’, Int. J. Hydrogen Energy, 2004, 29, 145–157.
  • Chen LL and Andrzei L: ‘Ni–Al Powder electrocatalyst for hydrogen evolution: effect of heat-treatment on morphology, composition, and kinetics’, J. Electrochem. Soc., 1993, 140, 2464–2472.
  • Miao HJ and Piron DL: ‘Composite-coating electrodes for hydrogen evolution reaction’, Electrochim. Acta, 1993, 38, 1079–1085.
  • Tanaka S, Hirose N, Tanaki T and Ogata YH: ‘Effect of Ni–Al precursor alloy on the catalytic activity for a Raney-Ni cathode’, J. Electrochem. Soc., 2000, 147, 2242–2245.
  • Arul Raj I: ‘Nickel-based, binary-composite electrocatalysts for the cathodes in the energy-efficient industrial production of hydrogen from alkaline-water electrolytic cells’, J. Appl. Electrochem., 2000, 30, 499–504.
  • Han Q, Liu K R, Chen JS and Wei XJ: ‘Study of amorphous Ni–S alloys as hydrogen evolution reaction cathode in alkaline medium’, Int. J. Hydrogen Energy, 2003, 28, 1207–1212.
  • Wang M Y, Wang Z, Guo ZC and Li ZJ: ‘The enhanced electrocatalytic activity and stability of NiW films electrodepositd under super gravity field for hydrogen evolution reaction’, Int. J. Hydrogen Energy, 2011, 36, 3305–3312.
  • Dong HX, He YH, Jiang Y, Wu L, Zou J and Xu NP: ‘Effect of Al content on porous Ni–Al alloys’, Mater. Sci. Eng. A, 2011, A528, 4849–4855.
  • Wu L, Yao J, Dong HX, He YH, Xu NP, Zou J, Huang BY and Liu CT: ‘The corrosion behavior of porous Ni3Al intermetallic materials in strong alkali solution’, Intermetallics, 2011, 19, 1759–1765.
  • Dong HX, Lei T, He YH, Xu NP, Huang BY and Liu CT: ‘Electrochemical performance of porous Ni3Al electrodes for hydrogen evolution reaction’, Int. J. Hydrogen Energy, 2011, 36, 12112–12120.
  • Olivares-Ramíreza JM, Campos-Corneliob ML, Uribe Godínezb J, Borja-Arcob E and Castellanosb RH: ‘Studies on the hydrogen evolution reaction on different stainless steels’, Int. J. Hydrogen Energy, 2007, 32, 3170–3173.
  • Gennero de Chialvo MR and Chialvo AC: ‘Hydrogen evolution reaction on smooth Ni1−x+Mox alloys (0≤x≤0·25)’, J. Electronanl. Chem., 1998, 448, 87–93.
  • Constable CP, Lewis DB, Yarwood J and Münz WD: ‘Raman microscopic studies of residual and applied stress in PVD hard ceramic coatings and correlation with X-ray diffraction (XRD) measurements’, Surf. Coat. Technol., 2004, 184, 291–297.
  • Morsi K: ‘Review: reaction synthesis processing of Ni–Al intermetallic materials’, Mater. Sci. Eng. A, 2001, A299, 1–15.
  • Paul A, H van Dal MJ, Kodentsov AA and van Loo FJJ: ‘The Kirkendall effect in multiphase diffusion’, Acta Mater., 2004, 52, (3), 623–630.
  • Shan ZQ, Liu YJ, Chen Z, Warrender G and Tian JH: ‘Amorphous Ni–S–Mn alloys as hydrogen evolution reaction cathode in alkaline medium’, Int. J. Hydrogen Energy, 2008, 33, 28–33.
  • Cui B, Lin H, Li JB, Li X, Yang J and Tao J: ‘Core-ring structured NiCo2O4 nanoplatelets: synthesis, characterization, and electrocatalytic applications’, Adv. Funct. Mater., 2008, 18, 1440–1447.
  • Brug GJ, van der Eden ALG, Rehbach MS and Sluyters JH: ‘The analysis of electrode impedances complicated by the presence of a constant phase element’, J. Electronanl. Chem., 1984, 176, 275–295.
  • Shervedani RK and Madram AR: ‘Electrocatalytic activities of nanocomposite Ni81P16C3 electrode for hydrogen evolution reaction in alkaline solution by electrochemical impedance spectroscopy’, Int. J. Hydrogen Energy, 2008, 33, (10), 2468–2476.
  • Bockris J and Reddy AK: ‘Modern electrochemistry’, Vol. 2, Chapter 8, 876–877; 1970, New York, Plenum Press.
  • Yuan TC, Li RD and Zhou KC: ‘Electrocatalytic properties of Ni–S–Co coating electrode for hydrogen evolution in alkaline medium’, Trans. Nonferrous Met. Soc. China, 2007, 17, (4), 762–765.
  • Kubisztal J, Budniok A and Lasia A: ‘Study of the hydrogen reaction on nickel-based composite coatings containing molybdenum powder’, Int. J. Hydrogen Energy, 2007, 32, 1211–1218.
  • Solmaz R, Döner A, Sahin I, Yüce AO, Kardas G, Yazici B and Erbil M: ‘The stability of NiCoZn electrocatalyst for hydrogen evolution activity in alkaline solution during the long-term electrolysis’, Int. J. Hydrogen Energy, 2009, 34, 7910–7918.
  • Shervedani RK and Madram AR: ‘Kinetics of hydrogen evolution reaction on nanocrystalline electrodeposited Ni62Fe35C3 cathode in alkaline solution by electrochemical impedance spectroscopy’, Electrochim. Acta, 2007, 53, (2), 426–433.
  • Lasia A and Rami A: ‘Kinetics of hydrogen evolution on nickel electrodes’, J. Electroanal. Chem., 1990, 294, 123–141.
  • Losw P, Lasia A, Menard H and Brossard L: ‘Impedance studies of porous lanthanum-phosphate-bonded nickel electrodes in concentrated sodium hydroxide solution’, J. Electroanal. Chem., 1993, 360, 101–118.
  • Hitz C and Lasia A: ‘Determination of the kinetic of the hydrogen evolution reaction by the galvanostatic step technique’, J. Electroanal. Chem., 2002, 532, 133–140.
  • Jaksic MM: ‘Advances in electrocatalysis for hydrogen evolution in the light of the Brewer-Engel valence-bond theory’, Int. J. Hydrogen Energy, 1987, 12, 727–752.
  • Rosalbinoa F, Delsanteb S, Borzoneb G and Angelinia E: ‘Electrocatalytic behaviour of Co–Ni–R (R = Rare earth metal) crystalline alloys as electrode materials for hydrogen evolution reaction in alkaline medium’, Int. J. Hydrogen Energy, 2008, 33, 6696–6703.

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