Mixed Matrix Membranes Fabricated from Nanofillers of a Porous Organic Polymer for Applications as Proton Exchange Membranes

被引:4
|
作者
Das, Anupam [1 ]
Hazarika, Mousumi [2 ]
Deka, Namrata [3 ]
Jana, Tushar [1 ]
机构
[1] Univ Hyderabad, Sch Chem, Hyderabad 500046, India
[2] Natl Inst Technol Meghalaya, Dept Chem, Shillong 793003, Meghalaya, India
[3] Vellore Inst Technol, Sch Adv Sci, Dept Chem, Vellore 632014, Tamil Nadu, India
关键词
polybenzimidazole; porous organic polymer; mixed matrix membrane; proton exchange membrane; proton conductivity; ACID DOPED POLYBENZIMIDAZOLE; FUEL-CELL APPLICATIONS; NANOCOMPOSITE MEMBRANES; PHOSPHORIC-ACID; CRYSTALLINE; CONDUCTION; COMPOSITES; TRANSPORT; EFFICIENT;
D O I
10.1021/acsanm.4c00560
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
In recent years, nanofiller-embedded polymer matrix-supported mixed matrix membranes (MMMs) have been the center of attraction for various potential applications. In this study, we have explored the role of porous organic polymers (POPs) as proton conducting materials in a polymer membrane-supported matrix. A triazine-based benzimidazole-linked POP (TBP) was utilized as a nanofiller in an attempt to fabricate oxy-polybenzimidazole (OPBI)-embedded MMMs by loading different weight percentages of TBP-POPs into the OPBI polymer matrix. The MMMs were kept for doping in phosphoric acid (PA) to obtain proton exchange membranes (PEMs). The incorporation of TBP-POPs as nanofillers in the OPBI matrix resulted in highly altered morphology, enhanced thermal, chemical, and mechanical durability, enhanced PA doping level (PDL) and proton conductivity, and remarkable PA retention properties in the OPBI-TBP nanocomposites. The observed proton conductivity obtained for the PA-doped OPBI-TBP-10% membrane is 0.223 S cm(-1) at 180 degrees C. The donor-acceptor type interfacial H-bonded network between the '-N & boxH;' atom of the OPBI polymer and the imidazole "N-H" group of TBP nanofillers, or vice versa, generates fibrillar porous morphology, as seen from FESEM analysis, and nanofillers self-assembled network into the polymer matrix, as evident from transmission electron microscopy analysis, for the composite membranes. All of these cumulative factors are responsible for the above-mentioned superior properties of the PEMs. Therefore, our current findings clearly demonstrate the interaction pattern of TBP-POPs as nanofillers to develop OPBI-supported MMMs, which can substantially perform as super proton conductors in the temperature range between 30 and 180 degrees C (fuel cell operating temperature) under an anhydrous environment. This will be the first report on POP-loaded PBI-based mixed matrix PEMs in the literature to date.
引用
收藏
页码:8081 / 8092
页数:12
相关论文
共 50 条
  • [31] Electroosmotic pumps fabricated from porous silicon membranes
    Yao, Shuhuai
    Myers, Alan M.
    Posner, Jonathan D.
    Rose, Klint A.
    Santiago, Juan G.
    JOURNAL OF MICROELECTROMECHANICAL SYSTEMS, 2006, 15 (03) : 717 - 728
  • [32] Effects of Polymer Morphology on Proton Solvation and Transport in Proton-Exchange Membranes
    Feng, Shulu
    Savage, John
    Voth, Gregory A.
    JOURNAL OF PHYSICAL CHEMISTRY C, 2012, 116 (36): : 19104 - 19116
  • [33] Effect of porous organic polymers in gas separation properties of polycarbonate based mixed matrix membranes
    Rodriguez-Jardon, Laura
    Lopez-Gonzalez, Mar
    Iglesias, Marta
    Maya, Eva M.
    JOURNAL OF MEMBRANE SCIENCE, 2021, 619
  • [34] Solution processable metal-organic frameworks for mixed matrix membranes using porous liquids
    Knebel, Alexander
    Bavykina, Anastasiya
    Datta, Shuvo Jit
    Sundermann, Lion
    Garzon-Tovar, Luis
    Lebedev, Yury
    Durini, Sara
    Ahmad, Rafia
    Kozlov, Sergey M.
    Shterk, Genrikh
    Karunakaran, Madhavan
    Carja, Ionela Daniela
    Simic, Dino
    Weilert, Irina
    Klueppel, Manfred
    Giese, Ulrich
    Cavallo, Luigi
    Rueping, Magnus
    Eddaoudi, Mohamed
    Caro, Juergen
    Gascon, Jorge
    NATURE MATERIALS, 2020, 19 (12) : 1346 - +
  • [35] Crosslinked organic/inorganic proton exchange membranes with multilayer structure
    Zhong, Shuangling
    Cui, Xuejun
    Sun, Chenggang
    Dou, Sen
    Liu, Wencong
    SOLID STATE IONICS, 2012, 227 : 91 - 95
  • [36] Crosslinked organic/inorganic hybrid proton exchange polymeric membranes
    Di Vona, Maria Luisa
    Marani, Debora
    D'Ottavi, Cadia
    Trombetta, Marcella
    Traversa, Enrico
    Beurroies, Isabelle
    Knauth, Philippe
    Licoccia, Silvia
    HYDROGEN CYCLE-GENERATION, STORAGE AND FUEL CELLS, 2006, 885 : 67 - +
  • [37] Proton exchange membranes based on sulfonimide for fuel cell applications
    Rahman, K
    Aiba, G
    Susan, A
    Watanabe, M
    ELECTROCHIMICA ACTA, 2004, 50 (2-3) : 633 - 638
  • [38] Recent advances in proton exchange membranes for fuel cell applications
    Zhang, Liwei
    Chae, So-Ryong
    Hendren, Zachary
    Park, Jin-Soo
    Wiesner, Mark R.
    CHEMICAL ENGINEERING JOURNAL, 2012, 204 : 87 - 97
  • [39] Transparent Metal-Organic Framework/Polymer Mixed Matrix Membranes as Water Vapor Barriers
    Bae, Youn Jue
    Cho, Eun Seon
    Qu, Fen
    Sun, Daniel T.
    Williams, Teresa E.
    Urban, Jeffrey J.
    Queen, Wendy L.
    ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (16) : 10098 - 10103
  • [40] Mixed matrix membranes containing polymer-embedded metal-organic framework microspheres
    Wu, Wufeng
    Su, Pengcheng
    Li, Wanbin
    AICHE JOURNAL, 2020, 66 (11)