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生态学杂志 ›› 2026, Vol. 45 ›› Issue (5): 1623-1632.doi: 10.13292/j.1000-4890.202605.031

• 研究报告 • 上一篇    下一篇

氢氧化铝改性生物炭去除水中氟化物(F-

赵永强1,武煜辉1,何苗苗2,3,向彪1,汤家喜1,2*   

  1. 1辽宁工程技术大学环境科学与工程学院, 辽宁阜新 123000; 2辽宁工程技术大学鄂尔多斯研究院, 内蒙古鄂尔多斯 017010; 3辽宁工程技术大学土木工程学院, 辽宁阜新 123000)
  • 出版日期:2026-05-10 发布日期:2026-05-08

Fluoride (F-) removal from water by hydroxyaluminum-modified biochar.

ZHAO Yongqiang1, WU Yuhui1, HE Miaomiao2,3, XIANG Biao1, TANG Jiaxi1,2*   

  1. (1College of Environmental Science and Engineering, Liaoning Technical University, Fuxin 123000, Liaoning, China; 2Ordos Institute of Liaoning Technical University, Ordos 017010, Inner Mongolia, China; 3College of Civil Engineering, Liaoning Technical University, Fuxin 123000, Liaoning, China).

  • Online:2026-05-10 Published:2026-05-08

摘要: 以氢氧化铝改性玉米秸秆生物炭(CSB)制备了一种水体氟化物(F-)吸附材料(Al-CSB)。采用SEM、BET、FTIR和Zeta电位分析对其进行结构性质表征;通过批量吸附实验探究了吸附剂投加量、溶液pH、溶液初始质量浓度对Al-CSB吸附F-的影响,并通过吸附动力学、等温吸附模型揭示其吸附机理。结果表明,Al-CSB形貌呈松散的棒状结构,管束状孔隙结构明显,Al-CSB表面成功负载了Al-O等阳离子官能团以及氢氧化铝胶体,表面带正电荷;改性前后生物炭对F-的吸附过程与准二级动力学模型、内扩散模型拟合效果较好,CSB与Al-CSB对F-的吸附过程受化学吸附机理控制,两种材料对F-的吸附受颗粒内扩散和表面吸附影响;吸附热力学过程与Langmuir模型拟合有较好的相关性,Al-CSB对水中氟化物的最大吸附量可达71.39 mg·g-1;当溶液中氟化物初始质量浓度为100 mg·L-1,投加量为6.0 g·L-1,溶液pH为6时,Al-CSB对溶液中F-的去除率高达97.9%。以河流水体为实验对象,4 g·L-1的Al-CSB可使水中氟化物浓度降低至1 mg·L-1以下。


关键词: 生物炭, 氢氧化铝, 改性, 氟化物, 吸附机理

Abstract: Hydroxyaluminum-modified corn straw biochar (CSB) was used to prepare an adsorption material for fluoride ions (F-) in water, denoted as Al-CSB. Structural properties of Al-CSB were characterized using SEM, BET, FTIR, and Zeta potential analysis. We examined the effects of adsorbent dosage, solution pH, and initial solution concentration on the adsorption of F- by Al-CSB with batch adsorption experiments. Adsorption kinetics and isotherm models were employed to elucidate the adsorption mechanism. The results showed that Al-CSB exhibited a loose rod-like structure with distinct bundle-like porous structures. The surface of Al-CSB successfully loaded with Al-O and other cationic functional groups, as well as hydrous aluminum oxide colloidal particles, resulting in a positively charged surface. The adsorption process of fluoride ions by CSB and Al-CSB fitted well with the pseudo-second-order kinetic model and the intraparticle diffusion model, suggesting that the adsorption process was controlled by chemical mechanisms. Both materials were affected by intraparticle diffusion and surface adsorption. The thermodynamic adsorption process well correlated with the Langmuir model, showing that Al-CSB had a maximum adsorption capacity of up to 71.39 mg·g-1 for fluoride in water. When the initial fluoride concentration was 100 mg·L-1, with an adsorbent dosage of 6.0 g·L-1 and solution pH of 6, Al-CSB achieved a removal rate of up to 97.9% for F-. In river water experiments, 4 g·L-1 of Al-CSB reduced the fluoride concentration to below 1 mg·L-1.


Key words: biochar, hydroxyaluminum, modification, fluoride, adsorption mechanism