Chen Tsai-Hsuan, Cuong Dinh Viet, Jang Yunjai, Khu Ngee-Zhen, Chung Eunhyea, Hou Chia-Hung
Graduate Institute of Environmental Engineering, National Taiwan University, No. 1, Sec. 4, Roosevelt Rd., Taipei, 10617, Taiwan.
Faculty of Environmental Engineering, Hanoi University of Civil Engineering, 55 Giai Phong, Hai Ba Trung, Hanoi, 100000, Vietnam.
Chemosphere. 2022 Nov;307(Pt 1):135613. doi: 10.1016/j.chemosphere.2022.135613. Epub 2022 Jul 7.
In this study, the electrosorption selectivity of porous activated carbon (AC) and nickel hexacyanoferrate (NiHCF), which represent two working mechanisms of capacitive electrosorption and redox intercalation, was investigated to separate cations in capacitive deionization (CDI). The cyclic voltammetry diagrams of AC showed the rectangular shape of double-layer charging, while that of NiHCF showed separated peaks associated with redox reactions. The specific capacitance of NiHCF was 143.6 F/g in 1 M NaCl, which was almost two times higher than that of AC. Cation selectivity experiments were conducted in single-pass CDI for a multi-cation solution. The electrosorption preference of the AC cathode was determined by a counterbalance between the ionic charge and hydrated size, reflecting the selectivity coefficient of different cations over Na in the range of 0.86-2.63. For the NiHCF cathode, the cation selectivity was mainly dominated by the hydrated radius and redox activity. Notably, high selectivities of K/Na ≈ 3.57, Na/Ca ≈ 9.97, and Na/Mg ≈ 18.92 were obtained. A significant improvement in the electrosorption capacity and monovalent ion selectivity can be achieved by utilizing the NiHCF electrode. The study demonstrates the fundamental aspects and promising opportunities of CDI in regard to ion selectivity.
在本研究中,研究了代表电容性电吸附和氧化还原插层两种工作机制的多孔活性炭(AC)和铁氰化镍(NiHCF)在电容去离子化(CDI)中分离阳离子的电吸附选择性。AC的循环伏安图显示出双层充电的矩形形状,而NiHCF的循环伏安图显示出与氧化还原反应相关的分离峰。在1 M NaCl中,NiHCF的比电容为143.6 F/g,几乎是AC的两倍。在单通道CDI中对多阳离子溶液进行了阳离子选择性实验。AC阴极的电吸附偏好由离子电荷和水合尺寸之间的平衡决定,反映了不同阳离子相对于Na的选择性系数在0.86 - 2.63范围内。对于NiHCF阴极,阳离子选择性主要由水合半径和氧化还原活性决定。值得注意的是,获得了K/Na≈3.57、Na/Ca≈9.97和Na/Mg≈18.92的高选择性。利用NiHCF电极可以显著提高电吸附容量和单价离子选择性。该研究展示了CDI在离子选择性方面的基本情况和广阔前景。