Huang Huimin, Chen Yi, Ma Rui, Luo Juan, Sun Shichang, Lin Junhao, Wang Yanyi
College of Chemistry and Environmental Engineering, Shenzhen University, Shenzhen, 518060, China.
School of Environment, Harbin Institute of Technology, Harbin, 150090, China.
Environ Res. 2023 Apr 1;222:115342. doi: 10.1016/j.envres.2023.115342. Epub 2023 Jan 20.
Sargassum biochar has potential advantages as an electrode material due to its natural microscopic pore channels. However, conventional pyrolysis method is prone to thermal damage to the biochar, and incapable to form a complete pore structure resulting in poor biochar electrode performance. In this study, a strategy of microwave pyrolysis coupled with KOH activation was used to prepare nitrogen/phosphorus double-doped graded porous biochar (STC) using ammonium dihydrogen phosphate as dopant. The carbon material STC-1.24-800 prepared by the optimal parameters had a high specific surface area (SSA) of 1367.6 m g and a total pore volume of 1.499 cm g. The precise inside-out heating characteristics of microwave facilitated the generation of suitable meso-micropore distribution ratios in carbon, and the graded porous structure provided abundant active sites for charge accumulation and ion diffusion. The doped nitrogen/phosphorus atoms responding to the microwave field, generated spin to promote microwave absorption, introducing surface structural defects to produce electron density differences. The change in the nature of the electron donor and its electron density enhanced the electrical conductivity and chemical stability of STC. Nitrogen/phosphorus polar surface functional groups improved hydrophilicity and wettability. STC-1.24-800 had a higher specific capacitance of 531 F g and exhibits great cycle performance in capacitive deionization (CDI) applications (1.0 V, 50 mg L Cu) as well as adsorption performance (56.16 mg g ). The present work can provide a novel feasible idea for preparing diatomically doped graded porous biochar for CDI electrode application by microwave irradiation.
由于其天然的微观孔隙通道,马尾藻生物炭作为电极材料具有潜在优势。然而,传统的热解方法容易对生物炭造成热损伤,且无法形成完整的孔隙结构,导致生物炭电极性能较差。在本研究中,采用微波热解与KOH活化相结合的策略,以磷酸二氢铵为掺杂剂制备了氮/磷双掺杂分级多孔生物炭(STC)。通过优化参数制备的碳材料STC-1.24-800具有1367.6 m²/g的高比表面积(SSA)和1.499 cm³/g的总孔体积。微波精确的由内向外加热特性有助于在碳中产生合适的中微孔分布比例,分级多孔结构为电荷积累和离子扩散提供了丰富的活性位点。掺杂的氮/磷原子响应微波场,产生自旋以促进微波吸收,引入表面结构缺陷以产生电子密度差异。电子供体性质及其电子密度的变化增强了STC的电导率和化学稳定性。氮/磷极性表面官能团改善了亲水性和润湿性。STC-1.24-800在电容去离子(CDI)应用(1.0 V,50 mg/L Cu)中具有531 F/g的较高比电容,并表现出优异的循环性能以及吸附性能(56.16 mg/g)。本工作可为通过微波辐照制备用于CDI电极应用的双原子掺杂分级多孔生物炭提供一种新颖可行的思路。