Key Laboratory of Poyang Lake Environment and Resource Utilization, Ministry of Education, School of Resources & Environment, Nanchang University, Nanchang, 330031, China.
State Key Laboratory of Environmental Criteria and Risk Assessment Chinese Research Academy of Environmental Sciences, Beijing, 100012, China.
Environ Sci Pollut Res Int. 2024 Mar;31(13):20651-20664. doi: 10.1007/s11356-024-32466-z. Epub 2024 Feb 21.
Traditional pyrolysis biochar has been widely employed to treat dye wastewater. However, there are some problems in the pyrolysis process, such as the generation of harmful gases and the low content of silico-oxygen functional groups to promote adsorption. Straw biochar (Ac-BC) was prepared by sulfuric acid co-ball milling method. The adsorption performance and adsorption mechanism of rhodamine B (RhB) under different preparation conditions and factors were investigated. The results showed that the adsorption rate of Ac-BC on RhB was up to 94.9%, which was 60.5% and 55.8% higher than that of ball-milling straw (ST) and biochar prepared by pyrolysis (STBC600), respectively. The Ac-BC had better adaptability under different pH and common interfering ions for remove RhB. Characterization and DFT simulation analysis revealed that the sulfuric acid co-ball milling process promoted the formation of Si-OH and Si-O-CH oxygen-containing functional groups of Si component in straw, which enhanced the hydrogen bonding interactions and effectively improved the adsorption efficiency. This study investigated a new strategy for biochar preparation by sulfuric acid co-ball milling, which provides an additional development direction for the efficient resource utilization of straw.
传统热解生物炭已被广泛应用于处理染料废水。然而,热解过程存在一些问题,例如产生有害气体和硅氧官能团含量低,不利于吸附。本研究采用硫酸共球磨法制备了稻草生物炭(Ac-BC)。考察了不同制备条件和因素下 Ac-BC 对 RhB 的吸附性能和吸附机制。结果表明,Ac-BC 对 RhB 的吸附率高达 94.9%,分别比球磨稻草(ST)和热解生物炭(STBC600)高 60.5%和 55.8%。Ac-BC 在不同 pH 值和常见共存离子条件下对 RhB 具有更好的适应性。表征和 DFT 模拟分析表明,硫酸共球磨过程促进了稻草中 Si 组分 Si-OH 和 Si-O-CH 含氧官能团的形成,增强了氢键相互作用,从而有效提高了吸附效率。本研究为硫酸共球磨法制备生物炭提供了新策略,为稻草的高效资源化利用提供了新的发展方向。