通过改性粘土吸附去除四环素和通过受控热分解再生实现可持续水净化:一种可重复使用的环境友好型污染物缓解方法

IF 5.7 3区 环境科学与生态学 Q1 WATER RESOURCES
Iyad Dawood, Ahed H. Zyoud, Shaher Zyoud, Ameed Amireh, Samer H. Zyoud, Tae Woo Kim
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引用次数: 0

摘要

药物污染物如四环素(TC)因其在水生生物中的持久性而对环境造成危害。本文介绍了一种独特的可持续处理方法,将改性天然粘土(MC)吸附与控制热裂解再生相结合,在可重复使用的系统中去除废水中的TC。间歇式吸附实验表明,当pH为3.5,温度为25℃,温度为40 mg/L,平衡时间为45 min时,最佳的TC去除率为93%。吸附符合Langmuir等温线(R2 = 0.9713),吸附量为85.54 mg/g,动力学模型为准二级吸附,为化学吸附。在550°C 120 min的综合热裂解过程中,不仅将TC分解为CO2和H2O,而且还保持了MC的结构完整性,可以重复使用5个循环。在实际应用中,连续流柱试验验证了该方法在实际条件下的有效性。利用结构表征技术(XRD、SEM、TGA和FT-IR)验证了MC的热稳定性、多孔结构和高吸附能力。这种吸附-热裂解结合吸附的方法是传统水处理工艺的一种经济可行、环保的替代方法,可以有效地破坏二次废物,促进污染物的可持续去除。这种闭环、环保的方法不仅消除了二次废物,而且还展示了工业废水处理的可扩展潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sustainable water purification through the adsorptive removal of tetracycline via modified clay and regeneration via controlled thermolysis: a reusable and environmentally friendly approach for contaminant mitigation

Pharmaceutical pollutants such as tetracycline (TC) are environmentally dangerous because of their persistence in aquatic bodies. This work introduces a unique and sustainable treatment approach by combining modified natural clay (MC) adsorption with controlled thermolysis regeneration to eliminate TC from wastewater in a reusable system. Batch adsorption experiments revealed an optimum TC removal of 93% at pH 3.5, 25 °C, and 40 mg/L TC, with an equilibrium time of 45 min. Adsorption followed the Langmuir isotherm (R2 = 0.9713), indicating monolayer adsorption with a capacity of 85.54 mg/g, whereas kinetic modeling was pseudo-second order, suggesting chemisorption. The integration of thermolysis at 550 °C for 120 min not only decomposed TC into CO2 and H2O but also preserved the structural integrity of the MC for reuse over five cycles. Continuous-flow column trials corroborated the effectiveness of the approach under real conditions in practical applications. Structural characterization techniques (XRD, SEM, TGA, and FT-IR) were used to validate the thermal stability, porous structure, and high adsorption capacity of MC. This adsorption‒thermolysis approach with combined adsorption presents an economically viable and environmentally friendly alternative to traditional water treatment processes, which effectively destroys secondary waste and facilitates sustainable pollutant removal. This closed-loop, eco-friendly method not only eliminates secondary waste but also demonstrates scalable potential for industrial wastewater treatment.

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来源期刊
Applied Water Science
Applied Water Science WATER RESOURCES-
CiteScore
9.90
自引率
3.60%
发文量
268
审稿时长
13 weeks
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