Synthesis of novel zeolite-supported zinc-cobalt bimetallic catalyst by co-precipitation-calcination method for efficient activation of persulfate to degrade tetracycline hydrochloride

IF 2.8 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Chengjiao Tang, Dajun Ren, Shuqin Zhang, Xiaoqing Zhang
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Abstract

Addressing the challenges posed by the high cost and limited efficiency of traditional Chinese medicine wastewater treatment, the development of a cost-effective and highly efficient catalyst for activating persulfate (PMS) to degrade organic pollutants holds significant practical importance. This research successfully synthesized a zinc-cobalt bimetallic catalyst supported on sepiolite (Zn-Co@SEP). The verification was performed using various characterization techniques, including Scanning Electron Microscopy (SEM), X-ray Diffraction (XRD), Fourier Transform Infrared Spectroscopy (FT-IR), and X-ray Photoelectron Spectroscopy (XPS). XRD and SEM results both indicate that Zn-Co@SEP has excellent crystallinity, with active metal particles uniformly distributed on the surface of sepiolite nanofibers and consistent particle size. Additionally, the BET method determined the specific surface area of Zn-Co@SEP to be 5.533 m2/g. The introduction of sepiolite as a carrier provided additional active sites, facilitating the redox cycling of Co2+/Co3+ and Zn2+/Zn3+, which continuously generated reactive species. Zn-Co@SEP exhibited remarkable catalytic activity towards PMS, achieving a degradation efficiency of over 93% for TC (50 mg/L) within just 30 min in the Zn-Co@SEP/PMS system. The study systematically investigated the influence of Zn-Co@SEP dosage, PMS dosage, TC concentration, pH, and temperature on the degradation efficiency of the catalytic system. Notably, the Zn-Co@SEP/PMS system maintained high degradation rates for TC across a wide pH range (3–11) and demonstrated robust stability and recyclability, retaining a degradation rate of 89.56% after four cycles of reuse. Further experimental evidence from free radical quenching studies, electron paramagnetic resonance (EPR) experiments, and oxidative capacity potential (OCPT) results underscored the involvement of multiple radicals (1O2, SO4•, O2•, •OH) and electron transfer pathways in promoting TC degradation. In conclusion, this research contributes new insights into the synthesis of efficient PMS catalysts tailored for the degradation of antibiotic wastewater, addressing a critical need in environmental remediation.

Abstract Image

通过共沉淀-煅烧法合成新型沸石支撑锌钴双金属催化剂,用于高效活化过硫酸盐降解盐酸四环素
为应对中药废水处理成本高、效率低的挑战,开发一种经济高效的催化剂来活化过硫酸盐(PMS)以降解有机污染物具有重要的现实意义。本研究成功合成了一种支撑在海泡石上的锌钴双金属催化剂(Zn-Co@SEP)。研究采用了多种表征技术进行验证,包括扫描电子显微镜(SEM)、X 射线衍射(XRD)、傅立叶变换红外光谱(FT-IR)和 X 射线光电子能谱(XPS)。XRD 和扫描电镜结果均表明,Zn-Co@SEP 具有优异的结晶性,活性金属颗粒均匀地分布在海泡石纳米纤维的表面,且粒度一致。此外,根据 BET 方法测定,Zn-Co@SEP 的比表面积为 5.533 m2/g。引入海泡石作为载体提供了额外的活性位点,促进了 Co2+/Co3+ 和 Zn2+/Zn3+ 的氧化还原循环,从而不断产生活性物种。Zn-Co@SEP 对 PMS 具有显著的催化活性,在 Zn-Co@SEP/PMS 系统中,仅 30 分钟内 TC(50 mg/L)的降解效率就超过了 93%。该研究系统地考察了 Zn-Co@SEP 用量、PMS 用量、TC 浓度、pH 值和温度对催化体系降解效率的影响。值得注意的是,Zn-Co@SEP/PMS 系统在很宽的 pH 值范围(3-11)内都能保持较高的 TC 降解率,并表现出很强的稳定性和可回收性,在重复使用四个周期后,降解率仍高达 89.56%。来自自由基淬灭研究、电子顺磁共振(EPR)实验和氧化能力电位(OCPT)结果的进一步实验证据表明,多种自由基(1O2、SO4--、O2--、-OH)和电子传递途径参与了促进三氯乙酸降解的过程。总之,这项研究为合成适合抗生素废水降解的高效 PMS 催化剂提供了新的见解,满足了环境修复的关键需求。
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来源期刊
CiteScore
5.70
自引率
18.20%
发文量
229
审稿时长
2.6 months
期刊介绍: Research on Chemical Intermediates publishes current research articles and concise dynamic reviews on the properties, structures and reactivities of intermediate species in all the various domains of chemistry. The journal also contains articles in related disciplines such as spectroscopy, molecular biology and biochemistry, atmospheric and environmental sciences, catalysis, photochemistry and photophysics. In addition, special issues dedicated to specific topics in the field are regularly published.
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