Self-assembly of ZnO-Biochar/Kaolinite/Chitosan/GO with 1D/2D/3D heterojunctions for enhanced removal of estrogens and triclosan in water

IF 4.3 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Ajibola A. Bayode, Samson. O. Akpotu, Martins O. Omorogie, Eny Maria Vieira, Emmanuel I. Unuabonah
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Abstract

This Study focuses on the preparation of sustainable and efficient Chitosan catalyst for the removal of three organic pollutants, 17β-Estradiol (E2), 17α-ethynyl estradiol (EE2) and triclosan (TCS) from water. The prepared nanocomposites were characterized by different techniques which confirmed the presence of the key components Chitosan, Carica Papaya seed and Kaolinite. The optical characterization proved the nanocomposite is photoactive with a band gap of 1.81 eV and 1.77 eV for Chitosan/kaolinite biochar (CS/KBC) and Chitosan/kaolinite biochar/GO (CS/KBC/GO) respectively, confirming the ability of the nanocomposite to be active in the visible light region of the spectrum. The degradation experiment using CS/KBC/GO was observed better with 100% removal for 5 mg/L E2 and EE2 over 60 min and 97.8% over 120 min for 10 mg/L TCS at optimum conditions (pH 3 for E2, and EE2 and pH 7). It was observed that the superoxide radical played a major role in the degradation of the contaminants. Furthermore, the CS/KBC/GO was efficient over four cycles without any decrease in performance, which rules out the question of catalyst deactivation proving the sustainability of the catalyst. The toxicity test shows that the water is safe as it does not harm cerio daphnia silvestrii organism.; CS/KBC/GO efficiently removed the micropollutants from real-life waste samples and the performance was very good with a slight decrease in performance for the wastewater due to the complex matrix of the water sample that competes for the active site.

具有 1D/2D/3D 异质结的 ZnO-Biochar/Kaolinite/Chitosan/GO 的自组装,用于提高对水中雌激素和三氯生的去除率
本研究的重点是制备可持续的高效壳聚糖催化剂,用于去除水中的三种有机污染物:17β-雌二醇(E2)、17α-乙炔基雌二醇(EE2)和三氯生(TCS)。制备的纳米复合材料通过不同的技术进行了表征,证实了壳聚糖、木瓜种子和高岭石等关键成分的存在。光学表征证明纳米复合材料具有光活性,壳聚糖/高岭石生物炭(CS/KBC)和壳聚糖/高岭石生物炭/GO(CS/KBC/GO)的带隙分别为 1.81 eV 和 1.77 eV,证实了纳米复合材料在光谱的可见光区域具有活性。使用 CS/KBC/GO 进行的降解实验观察到,在最佳条件下(E2 的 pH 值为 3,EE2 的 pH 值为 7),5 mg/L E2 和 EE2 在 60 分钟内的去除率为 100%,10 mg/L TCS 在 120 分钟内的去除率为 97.8%。据观察,超氧自由基在污染物降解过程中发挥了重要作用。此外,CS/KBC/GO 在四个循环中都很有效,性能没有任何下降,这就排除了催化剂失活的问题,证明了催化剂的可持续性。毒性测试表明,水是安全的,因为它不会对水蚤造成危害。CS/KBC/GO 能有效去除实际废物样品中的微污染物,而且性能非常好,只是由于水样的复杂基质竞争活性位点,废水的性能略有下降。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
BMC Chemistry
BMC Chemistry Chemistry-General Chemistry
CiteScore
5.30
自引率
2.20%
发文量
92
审稿时长
27 weeks
期刊介绍: BMC Chemistry, formerly known as Chemistry Central Journal, is now part of the BMC series journals family. Chemistry Central Journal has served the chemistry community as a trusted open access resource for more than 10 years – and we are delighted to announce the next step on its journey. In January 2019 the journal has been renamed BMC Chemistry and now strengthens the BMC series footprint in the physical sciences by publishing quality articles and by pushing the boundaries of open chemistry.
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