Fundamental Perspectives on the Electrochemical Water Applications of Metal-Organic Frameworks

被引:25
作者
He, Xiang [1 ]
机构
[1] Florida Inst Technol, Dept Mech & Civil Engn, Melbourne, FL 32901 USA
关键词
Water remediation; Electrochemistry; Local structures; Pair distribution function; Redox-active MOFs; PROTON TRANSPORT; ATOMIC-STRUCTURE; THIN-FILMS; CONFINEMENT; COMPOSITES; MECHANISM; ACID; INFILTRATION; TEMPERATURE; ELECTRODES;
D O I
10.1007/s40820-023-01124-3
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Metal-organic frameworks (MOFs), a family of highly porous materials possessing huge surface areas and feasible chemical tunability, are emerging as critical functional materials to solve the growing challenges associated with energy-water systems, such as water scarcity issues. In this contribution, the roles of MOFs are highlighted in electrochemical-based water applications (i.e., reactions, sensing, and separations), where MOF-based functional materials exhibit outstanding performances in detecting/removing pollutants, recovering resources, and harvesting energies from different water sources. Compared with the pristine MOFs, the efficiency and/or selectivity can be further enhanced via rational structural modulation of MOFs (e.g., partial metal substitution) or integration of MOFs with other functional materials (e.g., metal clusters and reduced graphene oxide). Several key factors/properties that affect the performances of MOF-based materials are also reviewed, including electronic structures, nanoconfined effects, stability, conductivity, and atomic structures. The advancement in the fundamental understanding of these key factors is expected to shed light on the functioning mechanisms of MOFs (e.g., charge transfer pathways and guest-host interactions), which will subsequently accelerate the integration of precisely designed MOFs into electrochemical architectures to achieve highly effective water remediation with optimized selectivity and long-term stability.
引用
收藏
页数:31
相关论文
共 170 条
[91]   Water Dynamics in Metal-Organic Frameworks: Effects of Heterogeneous Confinement Predicted by Computational Spectroscopy [J].
Medders, Gregory R. ;
Paesani, Francesco .
JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2014, 5 (16) :2897-2902
[92]   On the contribution of Pair Distribution Function (PDF) to the characterization of nanocrystalline MOFs: The case of M-MOF-74* [J].
Molina, M. Asuncion ;
Manjon-Sanz, Alicia ;
Sanchez-Sanchez, Manuel .
MICROPOROUS AND MESOPOROUS MATERIALS, 2021, 319
[93]   Confinement-Controlled Aqueous Chemistry within Nanometric Slit Pores Focus Review [J].
Munoz-Santiburcio, Daniel ;
Marx, Dominik .
CHEMICAL REVIEWS, 2021, 121 (11) :6293-6320
[94]   Electronic origins of photocatalytic activity in d0 metal organic frameworks [J].
Nasalevich, Maxim A. ;
Hendon, Christopher H. ;
Santaclara, Jara G. ;
Svane, Katrine ;
van der Linden, Bart ;
Veber, Sergey L. ;
Fedin, Matvey V. ;
Houtepen, Arjan J. ;
van der Veen, Monique A. ;
Walsh, Aron ;
Gascon, Jorge .
SCIENTIFIC REPORTS, 2016, 6
[95]   Computational Prediction of Metal Organic Frameworks Suitable for Molecular Infiltration as a Route to Development of Conductive Materials [J].
Nie, Xiaowa ;
Kulkarni, Ambarish ;
Sholl, David S. .
JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2015, 6 (09) :1586-1591
[96]   Direct Evidence of Photoinduced Charge Transport Mechanism in 2D Conductive Metal Organic Frameworks [J].
Nyakuchena, James ;
Ostresh, Sarah ;
Streater, Daniel ;
Pattengale, Brian ;
Neu, Jens ;
Fiankor, Christian ;
Hu, Wenhui ;
Kinigstein, Eli Diego ;
Zhang, Jian ;
Zhang, Xiaoyi ;
Schmuttenmaer, Charles A. ;
Huang, Jier .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2020, 142 (50) :21050-21058
[97]   Electronic structures and magnetism of Zr-, Th-, and U-based metal-organic frameworks (MOFs) by density functional theory [J].
Pandey, Shubham ;
Demaske, Brian ;
Ejegbavwo, Otega A. ;
Berseneva, Anna A. ;
Setyawan, Wahyu ;
Shustova, Natalia ;
Phillpot, Simon R. .
COMPUTATIONAL MATERIALS SCIENCE, 2020, 184
[98]   Charge Delocalization and Bulk Electronic Conductivity in the Mixed-Valence Metal-Organic Framework Fe(1,2,3-triazolate)2(BF4)x [J].
Park, Jesse G. ;
Aubrey, Michael L. ;
Oktawiec, Julia ;
Chakarawet, Khetpakorn ;
Darago, Lucy E. ;
Grandjean, Fernande ;
Long, Gary J. ;
Long, Jeffrey R. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2018, 140 (27) :8526-8534
[99]   Integration of a (-Cu-S-)n plane in a metal-organic framework affords high electrical conductivity [J].
Pathak, Abhishek ;
Shen, Jing-Wen ;
Usman, Muhammad ;
Wei, Ling-Fang ;
Mendiratta, Shruti ;
Chang, Yu-Shin ;
Sainbileg, Batjargal ;
Ngue, Chin-May ;
Chen, Ruei-San ;
Hayashi, Michitoshi ;
Luo, Tzuoo-Tsair ;
Chen, Fu-Rong ;
Chen, Kuei-Hsien ;
Tseng, Tien-Wen ;
Chen, Li-Chyong ;
Lu, Kuang-Lieh .
NATURE COMMUNICATIONS, 2019, 10 (1)
[100]   Engineering of Band Gap in Metal Organic Frameworks by Functionalizing Organic Linker: A Systematic Density Functional Theory Investigation [J].
Pham, Hung Q. ;
Toan Mai ;
Nguyen-Nguyen Pham-Tran ;
Kawazoe, Yoshiyuki ;
Mizuseki, Hiroshi ;
Duc Nguyen-Manh .
JOURNAL OF PHYSICAL CHEMISTRY C, 2014, 118 (09) :4567-4577