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CHARGE TRANSFER IN HYDROGEN FUEL CELL ELECTRODE CONTAINING CARBON NANOFIBERS

https://doi.org/10.15518/isjaee.2018.19-21.040-051

Abstract

Using the methods of current-voltage characteristics and spectroscopy of electrochemical impedance, the paper studies the features of proton and electron transfer in high-porous electrodes of the hydrogen fuel cell containing Nafion mainly in insular form in a wide range of concentrations.

Electrode structures were manufactured in two steps: 1. Mechanical mixing of platinized carbon black of the E-TEK type, carbon nanofibers of the Taunit MD type (manufactured in Tambov) and the water -i-propanol dispersion of Nafion; 2. Ultrasonic homogenization to obtain a homogeneous dispersion of electrode material. The resulting dispersion was applied directly to a proton-conductive membrane of the Nafion-212 type. The quantities of the initial components were measured gravimetrically, the component composition of the electrode material was monitored by thermogravimetric analysis. The structure of the obtained materials was studied by the methods of scanning and transmission electron microscopy.

The given electrodes in the membrane-electrode assembly were activated by repeatedly cycling the potential difference from the potential of the open circuit to ~ 0 until the voltage-current characteristics stabilized. The ion resistance determined by the resistance to proton transfer was measured by the method of electrochemical impedance in the region of high frequencies of the hodograph and by the method of current-voltage characteristics in a wet (activated) electrode in the membrane-electrode assembly. The electronic resistance was measured in an air-dry electrode in which the ionic resistance of a dry Nafion was several orders of magnitude larger than the electron resistance and practically did not contribute to the value of the measured resistance.

The dependence of the ion resistance on the Nafion content is shown to have a minimum at 40% mass. The electronic resistance increases linearly with the increase in the Nafion content. The extreme nature of the dependence of the ion resistance on the Nafion content is explained by the decrease in the concentration of the water generation centers (platinum nanoparticles) with the increase in the Nafion content to some practical value at which the water produced is not sufficient to completely moisten Nafion.

About the Authors

A. O. Krasnova
Saint-Petersburg State Institute of Technology; Ioffe Institute
Russian Federation

Anna Krasnova - Ph.D. Student, Junior Researcher At Ioffe Institute.

Education: Master + Bachelor in Electrochemistry, St. Petersburg State Technological Institute (Technical University), 2015.

Research interests: fuel cells; electrochemical methods of investigation;

catalysis.

Publications: 11.

ResearcherID: M-3787-2015.

26 Moskovsky Av., St. Petersburg, 190013; 26 Polytehnicheskaya St., St. Petersburg, 194021.

Tel.: +7 (812) 494 92 99, +7 (812) 712 77 91; +7 (812) 297 22 45, +7 (812) 297 10 17.



N. V. Glebova
Ioffe Institute
Russian Federation

Nadezhda Glebova - Information about the author: Ph.D. in  Physics  and  Mathematics, Researcher at Ioffe Institute.

Education: St. Petersburg State

Technological   Institute   (Technical University), 2003.

Research  interests:   fuel   cell; nanocatalyst; electrochemistry.

Publications: 33, including a monograph.

26 Polytehnicheskaya St., St. Petersburg, 194021.

Tel.: +7 (812) 297 22 45, +7 (812) 297 10 17.



A. A. Nechitailov
Ioffe Institute
Russian Federation

Andrey Nechitailov -  Ph.D. in Engineering, Senior Researcher at Ioffe Institute. Education: LTI (TU), 1983.

Research interests: analytical chemistry; physical chemistry; fuel cells; catalysts.

Publications: more than 100.

26 Polytehnicheskaya St., St. Petersburg, 194021.

Tel.: +7 (812) 297 22 45, +7 (812) 297 10 17.



A. A. Tomasov
Ioffe Institute
Russian Federation

Aleksandr Tomasov - Ph.D. in  Physics  and  Mathematics, Senior Researcher at Ioffe Institute.

Education: LPI (SPbPU), 1973.

Research  interests:   fuel   cell; nanocatalyst;    electrochemical    impedance spectroscopy.

Publications: 72, including a monograph.

26 Polytehnicheskaya St., St. Petersburg, 194021.

Tel.: +7 (812) 297 22 45, +7 (812) 297 10 17.



N. K. Zelenina
Ioffe Institute
Russian Federation

Nataliya Zelenina - Researcher at Ioffe Institute.

Education:     SPbEU     (LETI), 1979.

Research  interests:   fuel   cell; nanocatalyst;   method   of   current-voltage characteristics.

Publications: 51.

26 Polytehnicheskaya St., St. Petersburg, 194021.

Tel.: +7 (812) 297 22 45, +7 (812) 297 10 17.



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Review

For citations:


Krasnova A.O., Glebova N.V., Nechitailov A.A., Tomasov A.A., Zelenina N.K. CHARGE TRANSFER IN HYDROGEN FUEL CELL ELECTRODE CONTAINING CARBON NANOFIBERS. Alternative Energy and Ecology (ISJAEE). 2018;(19-21):40-51. (In Russ.) https://doi.org/10.15518/isjaee.2018.19-21.040-051

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ISSN 1608-8298 (Print)