The performance and mechanism of persulfate activated by CuFe-LDHs for ofloxacin degradation in water

IF 5.8 2区 环境科学与生态学 Q1 CHEMISTRY, MULTIDISCIPLINARY Environmental Science: Nano Pub Date : 2024-07-09 DOI:10.1039/d4en00370e
Xue Zhang, Kang Zhang, Ting Li, Yujiao Wang, Yin Xu
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Abstract

Antibiotic-containing refractory organic wastewater is difficult to degrade via traditional physicochemical treatment technology because of its high stability. Therefore, an advanced oxidation process based on sulfate radicals was developed and received extensive attention because of its wider pH operating range and stronger oxidizing property, considering that the PS was easily activated by transition metals without excessive energy input. In this study, a layered double hydroxide (LDH) catalyst consisting of Cu(II) and Fe(III) (CuFe-LDHs) was synthesized to activate PS to degrade ofloxacin (OFL) in water effectively. The results showed that when the dosages of CuFe-LDHs and PS were set as 0.5 g L−1 and 0.2 mM, respectively, the degradation efficiency of OFL was up to ∼80% within a wide pH operating range (3–11) and with low activation energy (Ea = 54.95 kJ mol−1) under the condition that the initial OFL concentration was 10 mg L−1. Interference experiments on OFL degradation demonstrated that Cl, NO3, humic acid and HCO3 have almost no influence on the CuFe-LDHs/PS system, while the OFL degradation performance was significantly inhibited with increasing concentration of SO42− and H2PO4 (the degradation efficiency decreased by 44.4% and 60.1%, respectively). The results of quenching experiments and electron paramagnetic resonance analysis showed that SO4· was the dominant free radical for OFL degradation, and SO4· was generated via Cu-Fe electron transfer with surface-OH acting as active sites. That was the reason why the catalytic reaction process was easily affected by SO42− and H2PO4. In addition, the CuFe-LDHs/PS system exhibited excellent cycle performance: the OFL degradation efficiency remained at 66.8% after five cycles. In summary, this study provides theoretical and technical guidance for the application of CuFe-LDHs in antibiotic wastewater degradation by activating PS.

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CuFe-LDHs 激活的过硫酸盐在水中降解氧氟沙星的性能和机理
含抗生素的难降解有机废水由于其高度稳定性,很难通过传统的物理化学处理技术进行降解。因此,一种基于硫酸根自由基的高级氧化工艺应运而生,并受到广泛关注,因为它具有更宽的 pH 值操作范围和更强的氧化性能,同时考虑到 PS 易于被过渡金属激活而无需过多的能量输入。本研究合成了一种由 Cu(II) 和 Fe(III) 组成的层状双氢氧化物(LDH)催化剂(CuFe-LDHs),用于活化 PS 以有效降解水中的氧氟沙星(OFL)。结果表明,当CuFe-LDHs和PS的用量分别设定为0.5 g L-1和0.2 mM时,在初始OFL浓度为10 mg L-1的条件下,OFL在较宽的pH操作范围(3-11)内降解效率可达80%∼,且活化能较低(Ea = 54.95 kJ mol-1)。OFL降解干扰实验表明,Cl-、NO3-、腐殖酸和HCO3-对CuFe-LDHs/PS体系几乎没有影响,而随着SO42-和H2PO4-浓度的增加,OFL降解性能受到明显抑制(降解效率分别降低了44.4%和60.1%)。淬灭实验和电子顺磁共振分析结果表明,SO4-是降解OFL的主要自由基,而SO4-是通过Cu-Fe电子传递产生的,表面OH是其活性位点。这就是催化反应过程容易受到 SO42- 和 H2PO4- 影响的原因。此外,CuFe-LDHs/PS 系统还表现出优异的循环性能:OFL 降解效率在五个循环后保持在 66.8%。总之,本研究为 CuFe-LDHs 活化 PS 在抗生素废水降解中的应用提供了理论和技术指导。
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来源期刊
Environmental Science: Nano
Environmental Science: Nano CHEMISTRY, MULTIDISCIPLINARY-ENVIRONMENTAL SCIENCES
CiteScore
12.20
自引率
5.50%
发文量
290
审稿时长
2.1 months
期刊介绍: Environmental Science: Nano serves as a comprehensive and high-impact peer-reviewed source of information on the design and demonstration of engineered nanomaterials for environment-based applications. It also covers the interactions between engineered, natural, and incidental nanomaterials with biological and environmental systems. This scope includes, but is not limited to, the following topic areas: Novel nanomaterial-based applications for water, air, soil, food, and energy sustainability Nanomaterial interactions with biological systems and nanotoxicology Environmental fate, reactivity, and transformations of nanoscale materials Nanoscale processes in the environment Sustainable nanotechnology including rational nanomaterial design, life cycle assessment, risk/benefit analysis
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