College of Environment, Key Laboratory of Integrated Regulation and Resources Development of Shallow Lakes, Hohai University, Nanjing, 210098, China.
Institute of Chemical Industry of Forest Products, CAF, National Engineering Lab. for Biomass Chemical Utilization; Key Lab. of Biomass Energy and Material, Jiangsu Province, Nanjing, 210042, China.
Chemosphere. 2022 Mar;291(Pt 3):133113. doi: 10.1016/j.chemosphere.2021.133113. Epub 2021 Nov 29.
Recently, capacitive deionization (CDI) has attracted considerable interest as a potential desalination technique for seawater. It is thus desirable to develop low-cost, sustainable, and efficient electrode materials for desalination. In this study, the polyporphyrin was prepared by a one-pot reaction from biobased furan derivative, followed by activation to manufacture nitrogen-doped polyporphyrin derived porous carbons (NPPCs) for efficient capacitive deionization. In the presence of KOH as a pore activator, NPPCs exhibited cross-linked interconnected nanosphere chain-like structures inherited from the polyporphyrin backbone with coexisting mesopores and micropores, leading to extremely high specific surface area (2979.3 m g) and large pore volume (2.22 cm g). The electrochemical measurements revealed good conductivity, outstanding stability, and extraordinary specific capacitance (328.7 F g) of NPPCs, which can be ascribed to rich nitrogen content (8.0 at%) and high Pyrrolic nitrogen ratio. Due to their superior hierarchical porous structure and excellent electrochemical performance, the NPPC-800 electrodes presented a high salt adsorption capacity (SAC) of 35.7 mg g and outstanding cycling stability in 10 mM NaCl solution at 1.2 V during the desalination tests. This work demonstrates the utilization of biobased porous carbon material will pave a prospective way in sustainable and potential applications for CDI technique.
最近,作为海水淡化的一种潜在技术,电容去离子(CDI)吸引了相当多的关注。因此,开发低成本、可持续和高效的脱盐电极材料是很有必要的。在这项研究中,通过一锅反应从生物基呋喃衍生物制备卟啉,然后进行活化,制造用于高效电容去离子的氮掺杂卟啉衍生多孔碳(NPPCs)。在 KOH 作为孔活化剂的存在下,NPPCs 表现出交联的互联纳米球链状结构,继承自卟啉主链,并存在共存的中孔和微孔,导致极高的比表面积(2979.3 m g)和大孔体积(2.22 cm g)。电化学测量显示出 NPPCs 的良好导电性、出色的稳定性和非凡的比电容(328.7 F g),这归因于丰富的氮含量(8.0 at%)和高吡咯氮比。由于其优越的分级多孔结构和优异的电化学性能,NPPC-800 电极在脱盐测试中在 1.2 V 下 10 mM NaCl 溶液中表现出 35.7 mg g 的高盐吸附容量(SAC)和出色的循环稳定性。这项工作证明了利用生物基多孔碳材料将为 CDI 技术的可持续和潜在应用铺平道路。