Ultrahigh Proton Conductivity of Encapsulating Metal-Organic Polyhedra in a Metal-Organic Framework Composite Material and Its Nanocomposite Membrane

被引:1
作者
Wang, Jiao [1 ]
Liu, Yi-Ping [1 ]
Zhang, Chen-Xi [1 ,2 ]
Wang, Qing-Lun [2 ]
机构
[1] Tianjin Univ Sci & Technol, Coll Chem Engn & Mat, Tianjin 300457, Peoples R China
[2] Nankai Univ, Minist Educ, Key Lab Adv Energy Mat Chem, Tianjin 300071, Peoples R China
基金
中国国家自然科学基金; 芬兰科学院;
关键词
EXCHANGE MEMBRANES; GRAPHENE OXIDE; HYBRID MEMBRANES; SULFONATED POLYIMIDE; FLOW BATTERY; ACID; PERFORMANCE; FABRICATION; MOF;
D O I
10.1021/acs.chemmater.5c00182
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
The proton-exchange membrane fuel cell (FC) serves as an effective and environmentally sustainable energy conversion technology, which is gradually becoming an important choice for global energy transformation. In order to be used as a membrane electrode of a FC, in this work, a metal-organic polyhedra (MOP) material is encapsulated in a metal-organic framework (MOF) material, which not only improves the stability and dispersion of MOPs but also introduces a proton source and proton carrier into the MOF, thus improving the conductivity of the composite material: a copper-based MOP was successfully self-assembled within a porous MOF host (MIL-101-NH2), resulting in the synthesis of MOP@MIL-101-NH2. The diameter of the MOP guest is approximately 27 & Aring;, which exceeds the dimensions of the square windows (pore sizes of approximately 12 and 16 & Aring;) of MIL-101-NH2, yet remains smaller than that of the rhombicuboctahedral cage (ranging from approximately 29 to 34 & Aring;). This implies that the migration and leaching of the MOP could be effectively restricted when it is encapsulated within the cavities of the MOF. The proton conductivity of MOP@MIL-101-NH2 is 2.55 x 10-3 S<middle dot>cm-1 (at 95 degrees C under 98% relative humidity), indicating an enhancement of 6.39 times compared to that of MIL-101-NH2. Because the proton conductivity of membrane materials used as membrane electrodes of FCs was better than that of powder materials, composite membranes were prepared by blending MOF powder with the sulfonated polyether ether ketone (SPEEK) matrix, named MOP@MIL-101-NH2/SPEEK-X, X = 3, 5, 7, and 9, where "X" represents the mass fraction of MOP@MIL-101-NH2 in the composite membrane. The proton conductivity of the MOP@MIL-101-NH2/SPEEK-7 membrane reaches 3.54 x 10-1 S<middle dot>cm-1 (at 70 degrees C under 98% relative humidity), which is 2 orders of magnitude higher than that of MOP@MIL-101-NH2.
引用
收藏
页码:4325 / 4336
页数:12
相关论文
共 52 条
[1]   One-step phosphorylation of graphene oxide for the fabrication of nanocomposite membranes with enhanced proton conductivity for fuel cell applications [J].
Ahmed, Saad ;
Cai, Yangben ;
Ali, Muhammad ;
Khannal, Santosh ;
Ahmad, Zaheer ;
Lu, Yunhua ;
Wang, Songnan ;
Xu, Shiai .
JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS, 2019, 30 (14) :13056-13066
[2]   MIL-53(Al) and NH2-MIL-53(Al) modified -alumina membranes for efficient adsorption of dyes from organic solvents [J].
Amirilargani, Mohammad ;
Merlet, Renaud B. ;
Hedayati, Pegah ;
Nijmeijer, Arian ;
Winnubst, Louis ;
de Smet, Louis C. P. M. ;
Sudholter, Ernst J. R. .
CHEMICAL COMMUNICATIONS, 2019, 55 (28) :4119-4122
[3]   Two-dimensional metal-organic framework-graphene oxide hybrid nanocomposite proton exchange membranes with enhanced proton conduction [J].
Cai, Yuan Yuan ;
Zhang, Qiu Gen ;
Zhu, Ai Mei ;
Liu, Qing Lin .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2021, 594 :593-603
[4]   Porphyrin/sPEEK Membranes with Improved Conductivity and Durability for PEFC Technology [J].
Carbone, Alessandra ;
Gaeta, Massimiliano ;
Romeo, Andrea ;
Portale, Giuseppe ;
Pedicini, Rolando ;
Gatto, Irene ;
Castriciano, Maria Angela .
ACS APPLIED ENERGY MATERIALS, 2018, 1 (04) :1664-1673
[5]   High Protonic Conductivity of Three Highly Stable Nanoscale Hafnium(IV) Metal-Organic Frameworks and Their Imidazole-Loaded Products [J].
Chen, Xin ;
Wang, Shi-Zhuo ;
Xiao, Shang-Hao ;
Li, Zi-Feng ;
Li, Gang .
INORGANIC CHEMISTRY, 2022, 61 (12) :4938-4947
[6]   Advanced Fabrication Method for the Preparation of MOF Thin Films: Liquid-Phase Epitaxy Approach Meets Spin Coating Method [J].
Chernikova, Valeriya ;
Shekhah, Osama ;
Eddaoudi, Mohamed .
ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (31) :20459-20464
[7]   Metal-Organic Frameworks as Platforms for Functional Materials [J].
Cui, Yuanjing ;
Li, Bin ;
He, Huajun ;
Zhou, Wei ;
Chen, Banglin ;
Qian, Guodong .
ACCOUNTS OF CHEMICAL RESEARCH, 2016, 49 (03) :483-493
[8]   SPEEK-based proton exchange membranes modified with MOF-encapsulated ionic liquid [J].
da Trindade, Leticia G. ;
Borba, Katiuscia M. N. ;
Zanchet, Leticia ;
Lima, Demetrius W. ;
Trench, Aline B. ;
Rey, Fernando ;
Diaz, Urbano ;
Longo, Elson ;
Bernardo-Gusmao, Katia ;
Martini, Emilse M. A. .
MATERIALS CHEMISTRY AND PHYSICS, 2019, 236
[9]   Ordered porous materials for emerging applications [J].
Davis, ME .
NATURE, 2002, 417 (6891) :813-821
[10]   Large-Pore Apertures in a Series of Metal-Organic Frameworks [J].
Deng, Hexiang ;
Grunder, Sergio ;
Cordova, Kyle E. ;
Valente, Cory ;
Furukawa, Hiroyasu ;
Hmadeh, Mohamad ;
Gandara, Felipe ;
Whalley, Adam C. ;
Liu, Zheng ;
Asahina, Shunsuke ;
Kazumori, Hiroyoshi ;
O'Keeffe, Michael ;
Terasaki, Osamu ;
Stoddart, J. Fraser ;
Yaghi, Omar M. .
SCIENCE, 2012, 336 (6084) :1018-1023