CYANIDE OXIDATION AT NICKEL ANODES .2. VOLTAMMETRY AND COULOMETRY OF NI/CN-H2O SYSTEMS

被引:31
作者
KELSALL, GH
SAVAGE, S
BRANDT, D
机构
[1] Department of Mineral Resources Engineering, Imperial College, London
关键词
D O I
10.1149/1.2085520
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Coulometric experiments with a Ni plate electrode in 1 kmol NaOH m-3 containing 10(-4)-1 kmol NaCN m-3 showed that cyanide could be oxidized at high current efficiency [greater-than-or-equal-to 2 mol e-(mol CN-)-1] with negligible nickel dissolution. However, current densities were low for potentials below those at which Ni(OH2) was oxidized to Ni(OH)3, when oxygen evolution occurred, causing a sharp decrease in current efficiency. The electrochemical behavior of nickel in alkaline cyanide solutions was studied by cyclic voltammetry using a rotating (Pt) ring-disk (Ni) electrode system. No cyanide oxidation products were detected at the platinum ring electrode. However, by plating the Pt with Pb from alkaline solution, and using potentials < -1.4V vs. HgO/Hg with cyanide concentrations > 10 mol m-3, species other than oxygen (reduction) and hydrogen (oxidation) generated by the nickel disk electrode could be detected transiently, prior to passivation. From thermodynamic calculations for Ni-CN-H2O systems in the preceding paper, the most likely species involved were predicted to be Ni(CN)4(2-) ions, formed by reduction of Ni(OH)3 and the simultaneous oxidative dissolution of the underlying metal. The reaction(s) was observed only on the negative-going potential sweep of the nickel disk; no nickel dissolution was found to have occurred when the electrode was anodically polarized at constant potentials due to the presence of Ni(CN)2/Ni(OH)2 adsorbed on the electrode, as predicted from the thermodynamic calculations.
引用
收藏
页码:117 / 124
页数:8
相关论文
共 51 条
[31]  
RANDIN JP, 1976, ENCY ELECTROCHEMISTR, V7, pCH7
[32]  
RECHT HL, 1974, Patent No. 2539250
[33]  
ROBERTSON PM, 1978, CHEM IND-LONDON, P459
[34]   ELECTROCHEMISTRY OF NICKEL-OXIDE ELECTRODE .6. SURFACE OXIDATION OF NICKEL ANODES IN ALKALINE SOLUTION [J].
SATTAR, MA ;
CONWAY, BE .
ELECTROCHIMICA ACTA, 1969, 14 (08) :695-&
[35]  
SAWYER DT, 1963, J ELECTROANAL CHEM, V5, P195
[36]   ELEKTROLYSEN VON CYANIDEN .1. ELEKTROLYSEN VON CYANIDEN IN WASSRIGEN LOSUNGEN [J].
SCHMIDT, H ;
MEINERT, H .
ZEITSCHRIFT FUR ANORGANISCHE UND ALLGEMEINE CHEMIE, 1957, 293 (3-4) :214-227
[37]   POTENTIODYNAMIC BEHAVIOR OF NICKEL IN POTASSIUM HYDROXIDE SOLUTIONS [J].
SCHREBLERGUZMAN, RS ;
VILCHE, JR ;
ARVIA, AJ .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 1978, 8 (01) :67-70
[38]   ANODIC-OXIDATION OF POTASSIUM CYANIDE ON PLATINUM-ELECTRODE [J].
TAMURA, H ;
ARIKADO, T ;
YONEYAMA, H ;
MATSUDA, Y .
ELECTROCHIMICA ACTA, 1974, 19 (06) :273-277
[39]  
TARJANYI M, 1978, Patent No. 1025714
[40]   SUPPORTING ELECTROLYTE EFFECT ON [NI(CN)4]2-ELECTROCHEMICAL RECUCTION [J].
TORSI, G ;
PAPOFF, P .
JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1969, 20 (02) :231-&