Kinetics of Atomic Hydrogen Evolution and Hydrogen Permeability of Ag–Pd Alloys in an Alkaline Medium

  • Natalia D. Rodina Voronezh State University, 1 Universitetskaya pl., Voronezh 394018, Russian Federation
  • Natalia B. Morozova Voronezh State University, 1 Universitetskaya pl., Voronezh 394018, Russian Federation https://orcid.org/0000-0003-4011-6510
  • Aleksander V. Vvedenskii Voronezh State University, 1 Universitetskaya pl., Voronezh 394018, Russian Federation https://orcid.org/0000-0003-2210-5543
Keywords: homogeneous Ag–Pd alloys, atomic hydrogen injection and extraction, hydrogen permeability, aqueous alkaline medium

Abstract

Homogeneous Ag-Pd alloys are effective catalysts for the cathodic evolution of hydrogen. They are characterised by high mechanical strength and are less susceptible to hydrogen embrittlement than metallic palladium. The aim of this study was to determine the kinetics of hydrogen evolution on palladium and its homogeneous alloys with silver in an alkaline aqueous solution, and to investigate their hydrogen permeability. The behaviour of Pd and Ag-Pd alloys (XPd = 15–80 at%) in a deaerated 0.1 M KOH aqueous solution was studied using cyclic voltammetry and double step anodic-cathodic chronoamperometry. Cyclic voltammograms for Pd and Ag80Pd were similar. However, when a small amount of silver (≤ 20 at%) was introduced into palladium, the ionization rate of hydrogen decreased.
A further increase in the concentration of silver in the alloy resulted in a complete suppression of the ionisation process. For Ag–Pd alloys with palladium concentrations below 30 at%, the voltammograms did not show any hydrogen ionization peaks. The dependencies of the peak ionisation current on the potential scan rate for all the studied alloys were linear and were extrapolated to the origin of the coordinates, which indicated that the process was complicated by solid-phase diffusion. The slopes of the lines for Ag60Pd and Ag50Pd alloys were higher than the slope for the Ag80Pd alloy, which indicated the presence of silver oxides on the surface. For all the studied electrodes the dependence of the peak current potential on the
potential scan rate log linearly increased, which means that the electrochemical stage of atomic hydrogen ionization, which is complicated by solid-phase diffusion, is irreversible. The hydrogen permeability parameters of the alloys were calculated using potentiostatic cathodic and anodic current transients at different time intervals (1-10 sec.). The longer the hydrogenation time, the lower the current amplitudes on cathodic and anodic branches of the chronoamperograms. The hydrogen permeability parameters were calculated based on cathodic and anodic current transients linearised in the corresponding criteria coordinates, using the results of theoretical modelling of hydrogen injection and extraction for
semi-infi nite thickness electrodes. The phase-boundary exchange constant and the ionisation rate constant of atomic hydrogen were maximum for the alloy with the concentration of palladium of 80 at%. The hydrogen extraction rate constant changed linearly with the decrease in the concentration of palladium. The study determined that the values of hydrogen permeability for Ag-Pd alloys in alkaline solutions are lower than in acidic ones. The determining stage of the hydrogen evolution reaction on Ag–Pd alloys (XPd ≤ 40 at%) in a 0.1M KOH solution is the electrochemical stage of atomic hydrogen ionization complicated by its diffusion in the solid phase. The hydrogen permeability parameters in Ag-Pd alloys are maximum, when the concentration of palladium is ~80 at%. Therefore, such alloys can be used as materials for effi cient hydrogen purifi cation and storage

 

 

 

REFERENCES

1. Mahmood N., Yao Y., Zhang J.-W., Pan L., Zhang X., Zou, J.-J. Electrocatalysts for hydrogen evolution in
alkaline electrolytes: mechanisms, challenges, and prospective solutions. Adv. Sci. 2017;5(2): 1700464. DOI:
https://doi.org/10.1002/advs.201700464
2. Zhang W., Lai W., Cao R. Energy-related small molecule activation reactions: oxygen reduction and
hydrogen and oxygen evolution reactions catalyzed by porphyrin- and corrole-Based Systems. Chem. Rev.
2016;117(4): 3717–3797. DOI: https://doi.org/10.1021/acs.chemrev.6b00299
3. Yun S., Ted Oyama S. Correlations in palladium membranes for hydrogen separation: A review. J.
Membr. Sci. 2011;375(1–2): 28–45. DOI: https://doi.org/10.1016/j.memsci.2011.03.057
4. Bugaev A. L., Guda A. A., Dmitriev V. P., Lomachenko K. A., Pankin I. A., Smolencev N. Ju.,
Soldatov M. A., Soldatov A. V. Dinamika nanorazmernoj atomnoj i elektronnoj struktury materialov vodorodnoj energetiki pri realistichnyh tekhnologicheskih usloviyah [Operando dynamics of the nanoscale
atomic and electronic structure of materials for hydrogen storage]. Engineering Journal of Don. 2012;4-
1(22): 89–90. Available at: https://elibrary.ru/item.asp?id=18640138& (in Russ., abstract in Eng.)
5. Goltsova M. V., Zhirov G. I. Gidridnye prevrashcheniya v sisteme Pd-H. Struktura i svojstva
palladiya i ego gidrida [Hydride transformations in the Pd-H system. The structure and properties of palladium and its hydride]. In: The interaction of hydrogen isotopes with structural materials, Proceedings of the X International school of young scientists and specialists, 28 June – 4 July 2015. Moscow: Research centre “Kurchatov institute” Publ.; 2015. p. 171–189. Available
at: http://book.sarov.ru/wpcontent/uploads/2017/12/IHISM-15.pdf (in Russ., abstract in Eng.)
6. Knapton A. G. Palladium alloys for hydrogen diffusion membranes. Platinum Met. Rev. 1977;21(2):
44–50. Available at: https://www.technology.matthey.com/article/21/2/44-50
7. Sharma B., Kim J.-S. Pd/Ag alloy as an application for hydrogen sensing. Int. J. Hydrog. Energy. 2017;42(40): 25446–25452. DOI: https://doi.org/10.1016/j.ijhydene.2017.08.142
8. Ghosh G., Kantner C., Olson G. B. Thermodynamic modeling of the Pd-X (X=Ag, Co, Fe, Ni) systems. J.
Phase Equilib. 1999;20(3): 295–308. DOI: https://doi.org/10.1361/105497199770335811
9. Lukaszewski M., Klimek K., Czerwinski A. Microscopic, spectroscopic and electrochemical
characterization of the surface of Pd–Ag alloys. J. Electroanal. Chem. 2009;637(1–2): 13–20. DOI: https://doi.org/10.1016/j.jelechem.2009.09.024
10. Wise M. L. H., Farr J. P. G., Harris I. R. X-ray studies of the a/b miscibility gaps of some palladium
solid solution-hydrogen systems. J. Less Common Met. 1975;41(1): 115–127. DOI:https://doi.org/10.1016/0022-5088(75)90099-5
11. Amandusson H., Ekedahl L.-G., Dannetun H. Hydrogen permeation through surface modifi ed Pd
and PdAg membranes. J. Membr. Sci. 2001;193(1): 35–47. DOI:
https://doi.org/10.1016/S0376-7388(01)00414-8
12. Shcheblykina G. E., Bobrinskaya E. V., Vvedenskii A. V. Determination of real surface area of metals
and alloys by a combined electrochemical method. Protection of Metals. 1998;34(1): 11–14. Available at:
https://elibrary.ru/item.asp?id=23725216
13. Lesnykh N. N., Tutukina N. M., Marshakov I. K. The effect of sulfate and nitrate ions on the passivation
and activation of silver in alkaline solutions. Protection of Metals. 2008;44(5): 472–477. Available at: https://elibrary.ru/item.asp?id=11154994
14. Nikolskii B. P., Rabinovich V. A. Spravochnik khimika. V. 3. [Chemist’s handbook. V. 3.]. Moscow:
Khimiya Publ.;1965. 1008 p. (in Russ.)
15. Kudryashov D. A., Grushevskaya S. N., Ganzha S. V., Vvedenskii A. V. Effect of the crystal face
orientation and alloying with gold on the properties of thin anodic fi lms of Ag(I) oxide: I. Photocurrent.
Protection of Metals and Physical Chemistry of Surfaces. 2009;45(5): 451–460. Available at: https://elibrary.
ru/item.asp?id=12901352
16. Adzic R. R., Hciao M. W., Yeager E. B. Electrochemical oxidation of glucose on single –crystal
gold surfaces. J. Electroanal. Chem. 1989;260(2): 475–485. DOI: https://doi.org/10.1016/0022-0728(89)87164-5
17. Strobac S., Adzic R. R. The infl uence of OH−chemisorption on the catalytic properties of gold single
crystal surfaces for oxygen reduction in alkaline solutions. J. Electroanal. Chem. 1996;403(1–2): 169–181.
DOI: https://doi.org/10.1016/0022-0728(95)04389-6
18. Morozova N. B., Vvedenskii A. V., Beredina I. P. Katodnaya inzhekciya, anodnaya ekstrakciya i diffuziya
vodoroda v metallurgicheskih Cu,Pd- i Ag,Pd-splavah. II. Eksperimental’nye dannye [Katodic injection,
anodic extraction and hydrogen diffusion in metallurgic Cu, Pd-and Ag, Pd-alloys. I. Theoretical model].
Kondensirovannye sredy i mezhfaznye granitsy = Condensed Matter and Interphases. 2014;16(2): 178–
188. Available at: https://journals.vsu.ru/kcmf/article/view/823 (in Russ., abstract in Eng.)
19. Morozova N. B., Vvedenskii A. V., Beredina I. P. The phase-boundary exchange and the non-steadystate
diffusion of atomic hydrogen in Cu-Pd and Ag-Pd alloys. Part I. Analysis of the model. Protection of Metals
and Physical Chemistry of Surfaces. 2014;50(6): 573–578. DOI: https://doi.org/10.7868/S0044185614060138

Downloads

Download data is not yet available.

Author Biographies

Natalia D. Rodina, Voronezh State University, 1 Universitetskaya pl., Voronezh 394018, Russian Federation

5th year student, Faculty of
Chemistry, Voronezh State University, Voronezh,
Russian Federation; e-mail: mnb@chem.vsu.ru.

Natalia B. Morozova, Voronezh State University, 1 Universitetskaya pl., Voronezh 394018, Russian Federation

PhD in Chemistry, Associate
Professor, Department of Physical Chemistry, Voronezh
State University, Voronezh, Russian Federation;
e-mail: mnb@chem.vsu.ru

Aleksander V. Vvedenskii, Voronezh State University, 1 Universitetskaya pl., Voronezh 394018, Russian Federation

DSc in Chemistry,
Professor, Department of Physical Chemistry, Voronezh
State University, Voronezh, Russian Federation;
e-mail: alvved@chem.vsu.ru.

Published
2020-06-25
How to Cite
Rodina, N. D., Morozova, N. B., & Vvedenskii, A. V. (2020). Kinetics of Atomic Hydrogen Evolution and Hydrogen Permeability of Ag–Pd Alloys in an Alkaline Medium. Condensed Matter and Interphases, 22(2), 266-274. https://doi.org/10.17308/kcmf.2020.22/2853
Section
Статьи

Most read articles by the same author(s)