Study on Dissolution Different of Metal Palladium Powder and Place

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Abstract:

The chemistry of the dissolution of Palladium in pressure-cyanide has not received considerable attention. At room temperature and pressures, the reaction between sodium cyanide and Palladium does not occur because of poor kinetics. However, at elevated temperatures between 100-160 °C, Palladium can be leached by sodium cyanide like the reaction of gold. A research study has been undertaken to develop the fundamentals of a method for the direct dissolution of Palladium In this work, the dissolution of Palladium powder and place were measured in pressure clear cyanide solution. The cyanide leaching reaction mechanism is also discussed. The data of Palladium powder and place at different cyanide concentrations, different temperature and different oxygen pressure are obtained. The dissolution rate of metal Palladium powder and place were found to be relate to the cyanide and oxygen level.

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Advanced Materials Research (Volumes 1033-1034)

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1283-1287

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October 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] M. Tadjeddine, J.P. Flament, A. Le Rille, A. Tadjeddine,Surface Science 600 (2006), P. 2138.

DOI: 10.1016/j.susc.2006.02.049

Google Scholar

[2] J. Chen and K. Huang: Hydrometallurgy Vol. 82(2006), P. 164–171.

Google Scholar

[3] J.E. Hoffmann: Journal of Metals, Vol. 40(1988), P. 40–44.

Google Scholar

[4] W.J. Bruckard, K.J. McDonald, C.M. McInnes, G.J. Sparrow and J.T. Woodcock: Hydrometallurgy, Vol. 30 (1992), P. 211–217.

Google Scholar

[5] C.M. McInnes, G.J. Sparrow, J.T. Woodcock: Hydrometallurgy Vol. 31(1993), P. 157–164.

Google Scholar

[6] K. Huang and J. Chen: Acta of Metals(In Chinese) Vol. 40(2004), P. 270–274.

Google Scholar

[7] A.I. Titkov A.N. Salanov, S.V. Koscheev, Surface Science, Vol. 600(2006),P. 4119.

Google Scholar

[8] Chris Clay, Linda Cummings and Andrew Hodgson,Surface Science, Vol. 601(2007), P. 562.

Google Scholar

[9] Yilin Cao and Zhao-Xu Chen, Surface Science, Vol. 60(2006), P. 572-4583.

Google Scholar

[10] James M. Harrington, S. Bart Jones, Inorganica Chimica Acta, 15(2005), P. 4473.

Google Scholar

[11] E. Hesse and J.A. Creighton: Chemical Physics Letters, Vol. 303 (1999) , P. 101.

Google Scholar

[12] Wadsworth, M.E., Zhu, X., Thompson, J.S., Pereira C.J., HydrometallurgyVol. 57(2000), 1-11.

Google Scholar

[13] M. Tadjeddine, J.P. Flament ,A. Le Rille: Surface Science Vol. 600 (2006) , P. 2138.

Google Scholar

[14] B. Ren, X.Q. Li , D.Y. Wu: Chemical Physics Letters Vol. 322( 2000) ,P. 561.

Google Scholar

[15] F. Ample, A. Clotet, J. M. Ricart: Surface Science, Vol. 558 (2004) , P. 111.

Google Scholar

[16] Tan Guo, Andreas Illies, Vince Cammarata, Michael Arndt, William Sonzogni, Journal of Electroanalytical Chemistry Vol. 610 (2007), P. 102–105.

DOI: 10.1016/j.jelechem.2007.07.002

Google Scholar