Direct prediction of the desalination performance of porous carbon electrodes for capacitive deionization

被引:501
作者
Porada, S. [1 ,2 ]
Borchardt, L. [3 ]
Oschatz, M. [3 ]
Bryjak, M. [2 ]
Atchison, J. S. [4 ]
Keesman, K. J. [1 ,5 ]
Kaskel, S. [3 ]
Biesheuvel, P. M. [1 ,6 ]
Presser, V. [4 ,7 ]
机构
[1] Wetsus, Ctr Excellence Sustainable Water Technol, NL-8934 CJ Leeuwarden, Netherlands
[2] Wroclaw Univ Technol, Fac Chem, Dept Polymers & Carbon Mat, PL-50370 Wroclaw, Poland
[3] Tech Univ Dresden, Dept Inorgan Chem, D-01069 Dresden, Germany
[4] INM Leibniz Inst New Mat, Energy Mat Grp, D-66123 Saarbrucken, Germany
[5] Wageningen Univ, NL-6708 WG Wageningen, Netherlands
[6] Wageningen Univ, Dept Environm Technol, NL-6708 WG Wageningen, Netherlands
[7] Univ Saarland, D-66123 Saarbrucken, Germany
关键词
CARBIDE-DERIVED CARBON; REDUCED GRAPHENE OXIDE; PORE-SIZE; COMPOSITE ELECTRODES; WATER DESALINATION; CHARGE EFFICIENCY; SELECTIVE REMOVAL; ENERGY-STORAGE; ADSORPTION; ELECTROSORPTION;
D O I
10.1039/c3ee42209g
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Desalination by capacitive deionization (CDI) is an emerging technology for the energy-and cost-efficient removal of ions from water by electrosorption in charged porous carbon electrodes. A variety of carbon materials, including activated carbons, templated carbons, carbon aerogels, and carbon nanotubes, have been studied as electrode materials for CDI. Using carbide-derived carbons (CDCs) with precisely tailored pore size distributions (PSD) of micro-and mesopores, we studied experimentally and theoretically the effect of pore architecture on salt electrosorption capacity and salt removal rate. Of the reported CDC-materials, ordered mesoporous silicon carbide-derived carbon (OM SiC-CDC), with a bimodal distribution of pore sizes at 1 and 4 nm, shows the highest salt electrosorption capacity per unit mass, namely 15.0 mg of NaCl per 1 g of porous carbon in both electrodes at a cell voltage of 1.2 V (12.8 mg per 1 g of total electrode mass). We present a method to quantify the influence of each pore size increment on desalination performance in CDI by correlating the PSD with desalination performance. We obtain a high correlation when assuming the ion adsorption capacity to increase sharply for pore sizes below one nanometer, in line with previous observations for CDI and for electrical double layer capacitors, but in contrast to the commonly held view about CDI that mesopores are required to avoid electrical double layer overlap. To quantify the dynamics of CDI, we develop a two-dimensional porous electrode modified Donnan model. For two of the tested materials, both containing a fair degree of mesopores (while the total electrode porosity is similar to 95 vol%), the model describes data for the accumulation rate of charge (current) and salt accumulation very well, and also accurately reproduces the effect of an increase in electrode thickness. However, for TiC-CDC with hardly any mesopores, and with a lower total porosity, the current is underestimated. Calculation results show that a material with higher electrode porosity is not necessarily responding faster, as more porosity also implies longer transport pathways across the electrode. Our work highlights that a direct prediction of CDI performance both for equilibrium and dynamics can be achieved based on the PSD and knowledge of the geometrical structure of the electrodes.
引用
收藏
页码:3700 / 3712
页数:13
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