scholarly journals Investigations on the Redox Behavior and the Electrolysis Characteristics of Pd-20at.%Ni Eectrode in 30wt.%KOH Electrolyte

1970 ◽  
Vol 43 (1) ◽  
pp. 13-28 ◽  
Author(s):  
Mithun Sarker ◽  
M Ashraful Islam Molla ◽  
Rafiqul Islam ◽  
Samina Ahmed ◽  
AKM Fazle Kibria

The redox behavior, surface reaction kinetics, stability, electrolysis characteristics and efficiency of a Pd-20 at %Ni electrode have been investigated in 30wt.%KOH electrolyte at room temperature by using cyclic voltammetry. The electrode showed three couples of redox peaks in between the potential range -1.0 to + 0.65 V. The origin of the peak couples were identified by cycling Pd and Ni electrodes independently in the same potential ranges. It was realized that the peak couples were originated from the transformations of M(0) ←→ M(II) oxide, M(II) oxide ←→ M(III) oxide and M(III) oxide ←→ M(IV) oxide, respectively. The term M represents the Pd-Ni alloy. The potentials of the peaks, potential differences of the peak couples and the peak currents found remarkably different than those of Pd and Ni electrodes. The redox reaction kinetics of the electrode showed combined surface reaction trends of Pd and Ni electrodes. The apparent stability of the electrode found good. The electrode showed equal and 4.2 times higher oxygen evolution current densities than those of Ni and Pd electrodes. Hydrogen evolution current density found 2.9 times lower than that of Pd electrode but 100% better than the Ni electrode at the potential range - 1.0 to + 0.65 V. Almost 70% hydrogen evolution efficiency of Pd electrode was found at the potential range - 1.0 to - 0.05 V. On cycling the electrode at various potential ranges, it was found that the redox behavior resembled to that of Pd electrode at low potential ranges. The observed results indicated that Pd-20at.%Ni electrode is a good electrode during electrolysis for oxygen evolution reaction and its electrolysis efficiency is far better than the Ni electrode. Key words: Pd-20at. %Ni electrode, Redox behavior, Hydrogen evolution, Oxygen evolution. DOI: 10.3329.bjsir.v43i1.853 Bangladesh J. Sci. Ind. Res. 43(1), 13-28, 2008

1970 ◽  
Vol 33 (1) ◽  
pp. 1-13 ◽  
Author(s):  
Md Ashraful Islam Molla ◽  
Mithun Sarker ◽  
Rafiqul Islam ◽  
AKM Fazle Kibria

Convinced on the necessity of finding effective electrodes for electrolyser- the oxidation-reduction behaviors, surface reaction kinetics, stability, electrolysis characteristics and efficiency of a Pd-50at.%Ni electrode have been investigated in 30wt.%KOH electrolyte at room temperature using cyclic voltammetry. Cyclic voltammogram of the electrode showed three couples of oxidation-reduction peaks in between the potential range - 1.0 to + 0.65 V. These peaks were found to be originated from the transformation of zero valent metal to their higher oxides in three consecutive steps and vice versa. The peak potentials, potential differences of the couples and the peak currents were found remarkably different from those of Pd and Ni electrodes. The surface reaction kinetics at Pd-Ni electrode followed the surface reaction trends similar to those of Pd and Ni electrodes. The apparent stability of the electrode was found good. The electrode showed 1.6 and 6.8 times higher oxygen evolution efficiencies than the Ni and Pd electrodes. Addition of Ni with Pd caused hydrogen evolution potentials to move to the negative direction. Tafel plot for the hydrogen evolution reactions (HER) showed two well-defined Tafel regions. Kinetic parameters, i.e., Tafel slope and exchange current density values for the low and high overpotential regions were found 127 mV/dec and 273 mV/dec, and 1.72 x 10-2 mA/cm2 and 1.52 mA/cm2, respectively. Observed slopes indicated its better efficiency over the Pd electrode. Journal of Bangladesh Academy of Sciences, Vol. 33, No. 1, 1-13, 2009 doi: 10.3329/jbas.v33i1.2945


1991 ◽  
Author(s):  
Steven M. George ◽  
Peter A. Coon ◽  
P. Gupta ◽  
M. L. Wise

2001 ◽  
Vol 178 (1-4) ◽  
pp. 63-74
Author(s):  
N. Dietz ◽  
S.C. Beeler ◽  
J.W. Schmidt ◽  
H.T. Tran

2019 ◽  
Vol 2 (7) ◽  
pp. 145-156
Author(s):  
Haizheng Song ◽  
M. Sugiyama ◽  
Yoshiaki Nakano ◽  
Yukihiro Shimogaki

Fuel ◽  
2021 ◽  
Vol 287 ◽  
pp. 119503
Author(s):  
Ahmed Hassan ◽  
Taraneh Sayadi ◽  
Martin Schiemann ◽  
Viktor Scherer

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