电容去离子
海水淡化
材料科学
碳纤维
电极
化学工程
纳米技术
膜
复合材料
化学
生物化学
物理化学
复合数
工程类
作者
Bichao Wu,Lvji Yan,Yixian Zhao,Lei Huang,Justice Annor Asare,Haiyin Gang,Yiyun Cao,Dun Wei,Haiying Wang,Yingjie He
标识
DOI:10.1016/j.jece.2023.110686
摘要
Flow-through capacitive deionization (FT-CDI) is a promising technology for desalination due to its large-scale applicability and cost-effectiveness. However, binder-free monolithic carbon sponge (MCS) electrodes with robust structures, preferable permeability, and rapid electron transfer rate are desired to achieve high desalination performance. Herein, we developed a three-dimensional poly(m-phenylenediamine)@Fungi (PmPD@Fungi)-derived MCS (PMCS) by a simple strategy. The PmPD@Fungi monolithic sponge precursor was constructed using the cross-linked structure of fungi hypha as the skeleton based on its high aspect ratio. The NH2-rich PmPD layer served as a protective sheath and nitrogen source to be wrapped on the fungi surface by in situ polymerization. PMCS shows a superb CDI performance with an ion (Cl-) removal capacity of 11.82 mg g−1 due to its high-nitrogen content and optimized surface area, increasing by 162 % more than fungi-derived MCS (FMCS). Compared with FMCS, the electrical conductivity and compressive strength of PMCS were improved by 90 % and 27 %, respectively. The prepared PMCS electrode provides a promising alternative for FT-CDI towards future desalination technologies.
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