碳布支撑的黑磷-FeMoO4 复合材料用于过一硫酸盐辅助光电催化降解盐酸四环素

IF 1.6 4区 工程技术 Q2 MATERIALS SCIENCE, TEXTILES Textile Research Journal Pub Date : 2024-03-28 DOI:10.1177/00405175241240152
Yueyue Song, Hui Zhang, Pengfei Zhang, Jiale Yao, Yaning Zhang, Wenming Li, Xiangtao Xuan
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The experimental results demonstrated that the performance of PMS-assisted PEC TC-HCl degradation by the CC-BP-FMO composites was significantly improved in comparison with photocatalysis, electrocatalysis, PMS activation, and PEC. The CC-BP-FMO composites with more exposed BP-FMO catalysts exhibited the ability to be reused for PMS-assisted PEC degradation of TC-HCl, with a large k value of 0.21 min<jats:sup>−1</jats:sup> and a high degradation rate of 97% after the fourth cycle. The remarkable PMS-assisted PEC property of the CC-BP-FMO composites was mainly attributed to the swift separation of photo-induced charge carriers, which hastened the creation of reactive radicals. Five possible catalytic reaction pathways existed in the CC-BP-FMO composites towards TC-HCl degradation under the PMS-assisted PEC condition. 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引用次数: 0

摘要

本研究利用溶热技术制备了碳布支撑的黑磷-FeMoO4(CC-BP-FMO)复合材料,并通过过一硫酸盐(PMS)辅助光电催化(PEC)途径将其用于降解盐酸四环素(TC-HCl)。实验采用了多种表征技术,系统地研究了盐酸四环素(TC-HCl)降解过程中的形态、元素组成、晶体和分子结构、磁性、键合态、能带结构、光诱导载流子的分离效率、电化学行为、反应物和中间产物。实验结果表明,与光催化、电催化、PMS活化和PEC相比,CC-BP-FMO复合材料的PMS辅助PEC降解TC-HCl的性能明显提高。BP-FMO催化剂暴露较多的CC-BP-FMO复合材料在PMS辅助的PEC降解TC-HCl中表现出了重复使用的能力,其k值大,为0.21 min-1,在第四个循环后降解率高达97%。CC-BP-FMO 复合材料之所以具有显著的 PMS 辅助 PEC 性能,主要是因为光诱导电荷载流子迅速分离,加速了活性自由基的产生。在 PMS 辅助 PEC 条件下,CC-BP-FMO 复合材料在 TC-HCl 降解过程中存在五种可能的催化反应途径。重要的是,光产生的电子和[式:见正文]自由基有利于 Fe+2/Fe+3 和 Mo+4/Mo+6 的氧化还原反应。TC-HCl 的降解涉及氧空位、[式:见正文]、[式:见正文]、∙OH 自由基和 1O2 非自由基的参与。CC-BP-FMO 复合材料具有处理含有机污染物废水的潜在应用价值。
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Carbon cloth supported black phosphorus-FeMoO4 composites for peroxymonosulfate-assisted photoelectrocatalytic degradation of tetracycline hydrochloride
This research utilized the solvothermal technique to prepare carbon cloth supported black phosphorus-FeMoO4 (CC-BP-FMO) composites, which were used for the degradation of tetracycline hydrochloride (TC-HCl) through the peroxymonosulfate (PMS)-assisted photoelectrocatalysis (PEC) route. Several characterization techniques were employed to systematically examine the morphology, elemental composition, crystal and molecule structures, magnetism properties, bonding states, energy band structure, separation efficiency of photo-induced carriers, electrochemical behaviors, reactive species, and intermediate products of TC-HCl degradation. The experimental results demonstrated that the performance of PMS-assisted PEC TC-HCl degradation by the CC-BP-FMO composites was significantly improved in comparison with photocatalysis, electrocatalysis, PMS activation, and PEC. The CC-BP-FMO composites with more exposed BP-FMO catalysts exhibited the ability to be reused for PMS-assisted PEC degradation of TC-HCl, with a large k value of 0.21 min−1 and a high degradation rate of 97% after the fourth cycle. The remarkable PMS-assisted PEC property of the CC-BP-FMO composites was mainly attributed to the swift separation of photo-induced charge carriers, which hastened the creation of reactive radicals. Five possible catalytic reaction pathways existed in the CC-BP-FMO composites towards TC-HCl degradation under the PMS-assisted PEC condition. Importantly, the photo-generated electrons and [Formula: see text] radicals were advantageous for the redox reaction of Fe+2/Fe+3 and Mo+4/Mo+6. The oxygen vacancies caused by P and Mo in the BP-FMO heterojunction could suppress the carrier recombination. The degradation of TC-HCl involved the participation of oxygen vacancy, [Formula: see text], [Formula: see text], and ∙OH radicals, and 1O2 nonradicals. The CC-BP-FMO composites have the potential application for treating wastewater containing organic pollutants.
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来源期刊
Textile Research Journal
Textile Research Journal 工程技术-材料科学:纺织
CiteScore
4.00
自引率
21.70%
发文量
309
审稿时长
1.5 months
期刊介绍: The Textile Research Journal is the leading peer reviewed Journal for textile research. It is devoted to the dissemination of fundamental, theoretical and applied scientific knowledge in materials, chemistry, manufacture and system sciences related to fibers, fibrous assemblies and textiles. The Journal serves authors and subscribers worldwide, and it is selective in accepting contributions on the basis of merit, novelty and originality.
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