Chemical Stability of Hybrid Materials Based on Nafion® Membrane and Hydrated Oxides

被引:3
|
作者
Safronova, E. Yu. [1 ]
Korchagin, O. V. [2 ]
Bogdanovskaya, V. A. [2 ]
Yaroslavtsev, A. B. [1 ]
机构
[1] Russian Acad Sci, Kurnakov Inst Gen & Inorgan Chem, Moscow 119991, Russia
[2] Russian Acad Sci, Frumkin Inst Phys Chem & Electrochem, Moscow 119991, Russia
基金
俄罗斯科学基金会;
关键词
Nafion; hybrid membrane; degradation; stability; fuel cell; FUEL-CELL; EXCHANGE MEMBRANES; DEGRADATION; HYDROGEN; ELECTROLYTE; RADICALS; TEMPERATURE;
D O I
10.1134/S2517751622060087
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Improvement of the chemical stability of hybrid membranes based on perfluorosulfonic acid polymers is necessary to increase the lifetime of fuel cells. This article presents the results of the study of the transport properties and chemical stability of the hybrid Nafion (R) 212 membranes modified with nanoparticles of hydrated oxides SiO2, ZrO2, and TiO2 by in situ procedure. The influence of the nature of the dopant on the properties of the obtained materials is shown. The chemical degradation of the initial and hybrid membranes has been studied ex situ by treatment with Fenton's reagent for 240 hours. The stability of materials increases in the series Nafion + SiO2 < Nafion + ZrO2 < Nafion < Nafion + TiO2. For the Nafion + TiO2 membrane the change in mass as a result of treatment with Fenton's reagent is two times lower than for the initial Nafion membrane. This reveals an increase in the chemical stability of materials upon the incorporation of TiO2 nanoparticles due to their ability to bind free radicals. The maximum power of membrane-electrode assembly based on hybrid membranes containing TiO2 and SiO2 is higher than that based on Nafion (R) 212 by 7-10% at RH similar to 100% and t = 65 degrees C.
引用
收藏
页码:414 / 422
页数:9
相关论文
共 50 条
  • [1] Chemical Stability of Hybrid Materials Based on Nafion® Membrane and Hydrated Oxides
    E. Yu. Safronova
    O. V. Korchagin
    V. A. Bogdanovskaya
    A. B. Yaroslavtsev
    Membranes and Membrane Technologies, 2022, 4 : 414 - 422
  • [2] Synthesis and study of hybrid materials based on a nafion membrane and hydrated titania
    E. Yu. Safronova
    D. V. Safronov
    A. A. Lysova
    O. V. Bobreshova
    I. A. Stenina
    A. B. Yaroslavtsev
    Petroleum Chemistry, 2015, 55 : 822 - 826
  • [3] Synthesis and study of hybrid materials based on a nafion membrane and hydrated titania
    Safronova, E. Yu.
    Safronov, D. V.
    Lysova, A. A.
    Bobreshova, O. V.
    Stenina, I. A.
    Yaroslavtsev, A. B.
    PETROLEUM CHEMISTRY, 2015, 55 (10) : 822 - 826
  • [4] Polybenzimidazole/Nafion hybrid membrane with improved chemical stability for vanadium redox flow battery application
    Ahn, Su Min
    Jeong, Hwan Yeop
    Jang, Jung-Kyu
    Lee, Jang Yong
    So, Soonyong
    Kim, Young Jun
    Hong, Young Taik
    Kim, Tae-Ho
    RSC ADVANCES, 2018, 8 (45) : 25304 - 25312
  • [5] Synthesis and Study of Hybrid Materials Based on Nafion Membranes, Hydrated Silica, Phosphotungstic Acid, and Its Acid Salts
    Prikhno, I. A.
    Safronova, E. Yu.
    Yaroslavtsev, A. B.
    Wu, W.
    PETROLEUM CHEMISTRY, 2014, 54 (07) : 556 - 561
  • [6] Synthesis and study of hybrid materials based on Nafion membranes, hydrated silica, phosphotungstic acid, and its acid salts
    I. A. Prikhno
    E. Yu. Safronova
    A. B. Yaroslavtsev
    W. Wu
    Petroleum Chemistry, 2014, 54 : 556 - 561
  • [7] Hybrid Membranes Based in Nafion-metallic Oxides: Performance Evaluations
    Rodriguez, Jesus
    Rojas, Nuria
    Sanchez-Molina, Margarita
    Gonzalez Rodriguez, Leandro
    Campana, Roberto
    Rodriguez, Lourdes
    INTERNATIONAL CONFERENCE ON NANOTECHNOLOGY BASED INNOVATIVE APPLICATIONS FOR THE ENVIRONMENT, 2016, 47 : 415 - 420
  • [8] Structure and proton conductivity of a hydrated Nafion-115 membrane
    A. G. Ivanova
    P. A. Il’in
    A. A. Dmitrieva
    O. A. Zagrebelnyy
    A. Yu. Gruzinov
    G. P. Kopitsa
    I. Yu. Kruchinina
    O. A. Shilova
    Glass Physics and Chemistry, 2016, 42 : 637 - 639
  • [9] Experimental and Theoretical Infrared Spectroscopic Study on Hydrated Nafion Membrane
    Singh, Raman K.
    Kunimatsu, Keiji
    Miyatake, Kenji
    Tsuneda, Takao
    MACROMOLECULES, 2016, 49 (17) : 6621 - 6629
  • [10] A Revised EVB Model for Proton Transport in Hydrated Nafion Membrane
    Mabuchi, Takuya
    Tokumasu, Takashi
    POLYMER ELECTROLYTE FUEL CELLS 13 (PEFC 13), 2013, 58 (01): : 261 - 269