Carbonized Nickel Complex of Sodium Pectate as Catalyst for Proton-Exchange Membrane Fuel Cells
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Published:2023-06-30
Issue:7
Volume:13
Page:635
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ISSN:2077-0375
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Container-title:Membranes
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language:en
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Short-container-title:Membranes
Author:
Kholin Kirill V.12, Sabirova Aigul F.12, Kadirov Danis M.2, Khamatgalimov Ayrat R.1ORCID, Khrizanforov Mikhail N.13ORCID, Nizameev Irek R.124, Morozov Mikhail V.4, Gainullin Radis R.12, Sultanov Timur P.12, Minzanova Salima T.1, Nefed’ev Eugene S.2, Kadirov Marsil K.12ORCID
Affiliation:
1. Arbuzov Institute of Organic and Physical Chemistry, FRC Kazan Scientific Center, Russian Academy of Sciences, Kazan 420088, Russia 2. Department of Physics, Kazan National Research Technological University, Kazan 420015, Russia 3. A.M. Butlerov Chemistry Institute, Kazan Federal University, Kremlevskaya Str. 18, Kazan 420008, Russia 4. Department of Nanotechnology in Electronics, Kazan National Research Technical University named after A.N. Tupolev—KAI, Kazan 420111, Russia
Abstract
Sodium pectate derivatives with 25% replacement of sodium ions with nickel ions were obtained by carbonization to temperatures of 280, 550, and 800 °C, under special protocols in an inert atmosphere by carbonization to temperatures of 280, 550, and 800 °C. The 25% substitution is the upper limit of substitution of sodium for nickel ions, above which the complexes are no longer soluble in water. It was established that the sample carburized to 550 °C is the most effective active element in the hydrogen-oxidation reaction, while the sample carbonized up to 800 °C was the most effective in the oxygen-reduction reaction. The poor performance of the catalytic system involving the pectin coordination biopolymer carbonized up to 280 °C was due to loss of proton conductivity caused by water removal and mainly by two-electron transfer in one catalytic cycle of the oxygen-reduction reaction. The improved performance of the system with coordination biopolymer carbonized up to 550 °C was due to the better access of gases to the catalytic sites and four-electron transfer in one catalytic cycle. The (Ni-NaPG)800C sample contains metallic nickel nanoparticles and loose carbon, which enhances the electrical conductivity and gas capacity of the catalytic system. In addition, almost four-electron transfer is observed in one catalytic cycle of the oxygen-reduction reaction.
Funder
RSF government assignment for FRC Kazan Scientific Center of RAS Arbuzov Institute of Organic and Physical Chemistry and Specific Surface Area Studies at the Kazan National Research Technical University Center for Collective Use “Nanomaterials and Nanotechnology” of the Kazan National Research Technological University
Subject
Filtration and Separation,Chemical Engineering (miscellaneous),Process Chemistry and Technology
Reference38 articles.
1. Song, K., Lan, Y., Zhang, X., Jiang, J., Sun, C., Yang, G., Yang, F., and Lan, H. (2023). A Review on Interoperability of Wireless Charging Systems for Electric Vehicles. Energies, 16. 2. Zhang, H., Sun, C., and Ge, M. (2022). Review of the Research Status of Cost-Effective Zinc–Iron Redox Flow Batteries. Batteries, 8. 3. Wang, W., Qu, Z., Wang, X., and Zhang, J. (2021). A molecular model of PEMFC catalyst layer: Simulation on reactant transport and thermal conduction. Membranes, 11. 4. Chicken albumen dielectrics in organic field-effect transistors;Chang;Adv. Mater.,2011 5. Enhanced emission efficiency in organic light-emitting diodes using deoxyribonucleic acid complex as an electron blocking layer;Hagen;Appl. Phys. Lett.,2006
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