季铵功能化纤维素去除溴酸盐离子:结构见解和功效评价。

IF 1.9 4区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL
Ecem Köseoğlu, Buse Aleyna Şenver, Yaşar Kemal Recepoğlu, Özgür Arar
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引用次数: 0

摘要

本研究评估了季铵改性纤维素作为生物吸附剂从水溶液中去除溴酸盐(BrO₃-)的潜力。元素分析和扫描电子显微镜(SEM)表征了生物吸附剂的元素组成和微观结构特征,傅里叶变换红外光谱(FTIR)表征了其分子结构。实验结果表明,BrO₃-的去除效率随着生物吸附剂用量的增加而增加,分别在0.025、0.05和0.2 g吸附剂的情况下达到约58%、78%和90%的去除率。在pH值为2、4和10时,去除率分别为25%、45%和76%,在pH值为6-8时,去除率最高。动力学研究表明吸附迅速,在3分钟内达到91%的去除率。Langmuir吸附等温线模型与实验数据拟合良好(R2 = 0.9987),最大吸附量为9.40 mg/g。热力学分析证实了一个自发的吸热吸附过程(∆G°= -8.11 kJ/mol;∆H°= +2.22 kJ/mol)。采用0.1 m H₂SO₄和NaCl进行脱附实验,脱附效率≥99.9%,选择NaCl作为首选再生剂以减少酸的消耗。生物吸附剂在三个再生循环中保持了90%以上的去除率。这些发现突出了季铵改性纤维素作为一种可持续和有效的材料从水系统中去除BrO₃-的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quaternary Ammonium Functionalized Cellulose for Bromate Ion Removal: Structural Insights and Efficacy Evaluation.

This study evaluates the potential of quaternary ammonium-modified cellulose as a biosorbent for bromate (BrO₃-) removal from aqueous solutions. Elemental analysis and scanning electron microscopy (SEM) characterized the elemental composition and microstructural features of the biosorbent, whereas Fourier-transform infrared (FTIR) spectroscopy elucidated its molecular structure. Experimental results revealed that BrO₃- removal efficiency increased with the biosorbent dose, achieving approximately 58%, 78%, and 90% removal with 0.025, 0.05, and 0.2 g of sorbent, respectively. The removal was pH-dependent, with efficiencies of 25%, 45%, and 76% at pH 2, 4, and 10, respectively, and the optimal removal was within the pH range of 6-8. Kinetic studies demonstrated rapid sorption, achieving 91% removal within 3 min. The Langmuir sorption isotherm model provided an excellent fit to the experimental data (R2 = 0.9987), indicating a maximum sorption capacity of 9.40 mg/g. Thermodynamic analyses confirmed a spontaneous and endothermic sorption process (∆G° = -8.11 kJ/mol; ∆H° = +2.22 kJ/mol). Desorption studies showed ≥ 99.9% efficiency using 0.1-M H₂SO₄ and NaCl, with NaCl selected as the preferred regenerant to minimize acid consumption. The biosorbent retained over 90% removal efficiency across three regeneration cycles. These findings highlight the potential of quaternary ammonium-modified cellulose as a sustainable and efficient material for BrO₃- removal from water systems.

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来源期刊
Water Environment Research
Water Environment Research 环境科学-工程:环境
CiteScore
6.30
自引率
0.00%
发文量
138
审稿时长
11 months
期刊介绍: Published since 1928, Water Environment Research (WER) is an international multidisciplinary water resource management journal for the dissemination of fundamental and applied research in all scientific and technical areas related to water quality and resource recovery. WER''s goal is to foster communication and interdisciplinary research between water sciences and related fields such as environmental toxicology, agriculture, public and occupational health, microbiology, and ecology. In addition to original research articles, short communications, case studies, reviews, and perspectives are encouraged.
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