Аннотация:
Transport properties of Inion, the new perfluorinated membrane containing short side chains, and of hybrid materials designed by the incorporation of nanoparticles of cesium hydrogen phosphotungstate into it were investigated. The Inion membranes possess a proton conductivity of 16.8mScm−1 upon a contact with water at 25°C, while the modification with cesium hydrogen phosphotungstate (1.2 wt%) increases their conductivity up to 34.8mScm−1 accompanied by the simultaneously decreased diffusion permeability.
Тип публикации:
Статья
Язык публикации: английский
Образец цитирования:
I. A. Prikhno, K. A. Ivanova, G. M. Don, A. B. Yaroslavtsev, “Hybrid membranes based on short side chain perfluorinated sulfonic acid membranes (Inion) and heteropoly acid salts”, Mendeleev Commun., 28:6 (2018), 657–658
Образцы ссылок на эту страницу:
https://www.mathnet.ru/rus/mendc1870
https://www.mathnet.ru/rus/mendc/v28/i6/p657
Эта публикация цитируется в следующих 14 статьяx:
R. R. Kayumov, A. A. Lochina, A. N. Lapshin, A. V. Bakirov, L. V. Shmygleva, “Inion Sulfocation Membranes Plasticized with Propylene Carbonate”, Membrany i membrannye tehnologii, 14:4 (2024), 276
R. R. Kayumov, A. A. Lochina, A. N. Lapshin, A. V. Bakirov, L. V. Shmygleva, “Inion Sulfocation Exchange Membranes Plasticized with Propylene Carbonate”, Membr. Membr. Technol., 6:5 (2024), 332
Irina A. Stenina, Andrey B. Yaroslavtsev, “Ionic Mobility in Ion-Exchange Membranes”, Membranes, 11:3 (2021), 198
Oleg N. Primachenko, Elena A. Marinenko, Alexey S. Odinokov, Svetlana V. Kononova, Yuri V. Kulvelis, Vasily T. Lebedev, “State of the art and prospects in the development of proton‐conducting perfluorinated membranes with short side chains: A review”, Polymers for Advanced Techs, 32:4 (2021), 1386
A. B. Yaroslavtsev, I. A. Stenina, “Current progress in membranes for fuel cells and reverse electrodialysis”, Mendeleev Commun., 31:4 (2021), 423–432
С. П. Филиппов, А. Б. Ярославцев, “Водородная энергетика: перспективы развития и материалы”, Усп. хим., 90:6 (2021), 627–643; S. P. Filippov, A. B. Yaroslavtsev, “Hydrogen energy: development prospects and materials”, Russian Chem. Reviews, 90:6 (2021), 627–643
Irina Stenina, Daniel Golubenko, Victor Nikonenko, Andrey Yaroslavtsev, “Selectivity of Transport Processes in Ion-Exchange Membranes: Relationship with the Structure and Methods for Its Improvement”, IJMS, 21:15 (2020), 5517
A. B. Yaroslavtsev, I. A. Stenina, D. V. Golubenko, “Membrane materials for energy production and storage”, Pure and Applied Chemistry, 92:7 (2020), 1147
Д. Ю. Воропаева, С. А. Новикова, А. Б. Ярославцев, “Пoлимepныe элeктpoлиты для мeтaлл-иoнныx aккyмyлятopoв”, Усп. хим., 89:10 (2020), 1132–1155; D. Yu. Voropaeva, S. A. Novikova, A. B. Yaroslavtsev, “Polymer electrolytes for metal-ion batteries”, Russian Chem. Reviews, 89:10 (2020), 1132–1155
L. Yu. Kovalenko, F. A. Yaroshenko, V. A. Burmistrov, T. N. Isaeva, D. M. Galimov, “Thermolysis of Hydrated Antimony Pentoxide”, Inorg Mater, 55:6 (2019), 586
P. Yu. Apel, O. V. Bobreshova, A. V. Volkov, V. V. Volkov, V. V. Nikonenko, I. A. Stenina, A. N. Filippov, Yu. P. Yampolskii, A. B. Yaroslavtsev, “Prospects of Membrane Science Development”, Membr. Membr. Technol., 1:2 (2019), 45
I. A. Stenina, A. B. Yaroslavtsev, “Interfaces in Materials for Hydrogen Power Engineering”, Membr. Membr. Technol., 1:3 (2019), 137
E. V. Polunin, Yu. E. Pogodina, I. A. Prikhno, A. B. Yaroslavtsev, “High pressure synthesis and transport properties of a perfluorinated sulfocationic exchange membrane”, Mendeleev Commun., 29:6 (2019), 661–662
D. Yu. Razorenov, S. A. Makulova, I. V. Fedyanin, K. A. Lyssenko, K. M. Skupov, Yu. A. Volkova, I. I. Ponomarev, I. I. Ponomarev, “Diimidazo[4,5-b:4′,5′-e]pyridine: synthesis and nucleophilic aromatic substitution reaction”, Mendeleev Commun., 29:2 (2019), 181–183