Capacitive deionization: Capacitor and battery materials, applications and future prospects

被引:7
作者
Sufiani, Omari [1 ,2 ]
Tanaka, Hideki [3 ]
Teshima, Katsuya [3 ]
Machunda, Revocatus L. [4 ]
Jande, Yusufu A. C. [1 ,5 ]
机构
[1] Nelson Mandela African Inst Sci & Technol, Dept Mat & Energy Sci & Engn, POB 447, Arusha, Tanzania
[2] Univ Dodoma, Coll Nat & Math Sci, Dept Chem, POB 338, Dodoma, Tanzania
[3] Shinshu Univ, Res Initiat Supramat, Wakasato, Nagano 3808553, Japan
[4] Nelson Mandela African Inst Sci & Technol, Dept Water & Environm Sci & Engn, POB 447, Arusha, Tanzania
[5] Nelson Mandela African Inst Sci & Technol, Water Infrastruct & Sustainable Energy Future WIS, African Ctr Excellence, Nelson Mandela Rd,POB 9124, Arusha, Tanzania
关键词
Capacitive deionization; Battery desalination; Carbon materials; Battery materials; Application of capacitive deionization; Material modification; ACTIVATED CARBON ELECTRODES; REDUCED GRAPHENE OXIDE; NANOTUBE COMPOSITE ELECTRODES; WASTE-WATER; ENERGY-CONSUMPTION; NITRATE REMOVAL; BRACKISH-WATER; POROUS CARBON; ELECTROSORPTION SELECTIVITY; DESALINATION PERFORMANCE;
D O I
10.1016/j.desal.2024.117923
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Water scarcity all over the world attracts alternative methods to purify saline water and supplement the available dwindling freshwater resources. Capacitive deionization (CDI) is hopeful to supply water to the population due to operation at low potential along with low energy expenditure when low salinity (5 mM NaCl) feed water solutions are desalinated. Electrode material is the main controlling factor in CDI system and a lot of efforts are devoted to develop excellent materials for better CDI performance. So far, carbon materials are widely used as the electrode for CDI, though limitations such as co-ion expulsion and faradaic reactions hinder their full utilization. Alternatively, battery materials are used since their performance is great due to mitigation of co-ions ejection as well as faradaic reactions. In 2019 our group reviewed factors affecting the performance of activated carbon electrode materials and revealed lack of selectivity, co-ion expulsion, low electrical conductivity and inappropriate pore size distribution to largely contribute to its low salt removal capacity [1]. Therefore, herein, we extend the discussion beyond AC to include other carbons such as aerogels, nanotubes, graphenes etc., and battery materials such as MXenes, sodium super ionic conductors, and BiOCl to mention the few. This article also discusses the extent CDI is applied in the laboratory scale as well as in the field for desalination of real water, wastewater remediation and removal of harmful contaminants to substantiate what it can offer beyond the laboratory experiments. The work is expected to save as a complete reference for the progress of CDI electrode materials and its applications in water purification.
引用
收藏
页数:24
相关论文
共 303 条
[31]   MXene as a Cation-Selective Cathode Material for Asymmetric Capacitive Deionization [J].
Chen, Bingbing ;
Feng, Aihu ;
Deng, Ruixiang ;
Liu, Kun ;
Yu, Yun ;
Song, Lixin .
ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (12) :13750-13758
[32]   Enhanced electrochemical and capacitive deionization performances of single-layer graphene oxide/nitrogen-doped porous carbon/activated carbon fiber composite electrodes [J].
Chen, Chunyu ;
Men, Lijuan ;
Liu, An ;
Yu, Siyang ;
Zhou, Jiankang ;
Wei, Zihan ;
Ju, Dianchun .
JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2022, 10 (06)
[33]   Characteristic and model of phosphate adsorption by activated carbon electrodes in capacitive deionization [J].
Chen, Fang-Fang ;
Li, Hao-Fei ;
Jia, Xue-Ru ;
Wang, Zhao-Yu ;
Liang, Xuan ;
Qin, Yu-Ying ;
Chen, Wen-Qing ;
Ao, Tian-Qi .
SEPARATION AND PURIFICATION TECHNOLOGY, 2020, 236
[34]   A quantitative prediction model for the phosphate adsorption capacity of carbon materials based on pore size distribution [J].
Chen, Fang-Fang ;
Li, Hao-Fei ;
Jia, Xue-Ru ;
Wang, Zhao-Yu ;
Qin, Yu-Ying ;
Liang, Xuan ;
Chen, Wen-Qing ;
Ao, Tian-Qi .
ELECTROCHIMICA ACTA, 2020, 331
[35]   NaTi2(PO4)3-Ag electrodes based desalination battery and energy recovery [J].
Chen, Fuming ;
Huang, Yinxi ;
Kong, Dezhi ;
Ding, Meng ;
Huang, Shaozhuan ;
Yang, Hui Ying .
FLATCHEM, 2018, 8 :9-16
[36]   Dual-ions electrochemical deionization: a desalination generator [J].
Chen, Fuming ;
Huang, Yinxi ;
Guo, Lu ;
Sun, Linfeng ;
Wang, Ye ;
Yang, Hui Ying .
ENERGY & ENVIRONMENTAL SCIENCE, 2017, 10 (10) :2081-2089
[37]   Carbon-incorporated Fe3O4 nanoflakes: high-performance faradaic materials for hybrid capacitive deionization and supercapacitors [J].
Chen, Lei ;
Xu, Xingtao ;
Wan, Lijia ;
Zhu, Guang ;
Li, Yanjiang ;
Lu, Ting ;
Albaqami, Munirah D. ;
Pan, Likun ;
Yamauchi, Yusuke .
MATERIALS CHEMISTRY FRONTIERS, 2021, 5 (08) :3480-3488
[38]   Integrating a supercapacitor with capacitive deionization for direct energy recovery from the desalination of brackish water [J].
Chen, Yu-Wu ;
Chen, Jhao-Fu ;
Lin, Chang-Hua ;
Hou, Chia-Hung .
APPLIED ENERGY, 2019, 252
[39]   Three-dimensional charge transfer pathway in close-packed nickel hexacyanoferrate-on-MXene nano-stacking for high-performance capacitive deionization [J].
Chen, Zeqiu ;
Ding, Zibiao ;
Chen, Yaoyu ;
Xu, Xingtao ;
Liu, Yong ;
Lu, Ting ;
Pan, Likun .
CHEMICAL ENGINEERING JOURNAL, 2023, 452
[40]   A study of electrosorption selectivity of anions by activated carbon electrodes in capacitive deionization [J].
Chen, Zhaolin ;
Zhang, Hongtao ;
Wu, Chunxu ;
Wang, Yushuang ;
Li, Wei .
DESALINATION, 2015, 369 :46-50