金属有机框架 Fe-BTC 作为电-芬顿处理四环素的异构催化剂

Catalysts Pub Date : 2024-05-10 DOI:10.3390/catal14050314
Taylor Mackenzie Fisher, Alexsando J. dos Santos, Sergi Garcia-Segura
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引用次数: 0

摘要

本研究探索了含铁金属有机框架(MOF)Basolite®F300 在电化学驱动的芬顿过程中作为异相催化剂的应用。电化学高级氧化过程(EAOPs)在减少药物等难降解有机污染物方面前景广阔。四环素(TC)是一类经常使用的抗生素,目前正在污染世界各地的地表水和地下水源。鉴于 EAOPs 能够快速处理持久性制药污染物,我们提出了一种电化学芬顿处理工艺,该工艺通过使用市售的 MOF 材料催化来降解四环素。在二氧化铱/碳毡装置中生成 H2O2 的效率很高。然而,由于形成了弱氧化剂物种,仅靠产生 H2O2 的电化学氧化(ECO-H2O2)不足以完全去除 TC。在异质电-芬顿(HEF)过程中加入 Basolite®F300 可在 40 分钟内完全去除三氯乙酸,充分展示了其功效。此外,本研究还探讨了不同 MOF 浓度的影响,结果表明,由于动力学的平衡和催化剂活性位点的限制,100 mg L-1 时的去除率最佳。此外,研究还探讨了应用电流对三氯乙酸去除率的影响,结果表明电流与去除率成正比关系。对能效的分析强调 50 毫安是最佳电流,但同时要兼顾去除效率和电能消耗。这项研究强调了 Basolite®F300 作为 HEF 工艺中有效催化剂在去除污染物方面的潜力,为优化使用 MOF 纳米材料处理有机污染物的电气化水处理应用提供了宝贵的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Metal–Organic Framework Fe-BTC as Heterogeneous Catalyst for Electro-Fenton Treatment of Tetracycline
This study explores the use of the iron-containing metal–organic framework (MOF), Basolite®F300, as a heterogeneous catalyst for electrochemically-driven Fenton processes. Electrochemical advanced oxidation processes (EAOPs) have shown promise on the abatement of recalcitrant organic pollutants such as pharmaceuticals. Tetracyclines (TC) are a frequently used class of antibiotics that are now polluting surface water and groundwater sources worldwide. Acknowledging the fast capability of EAOPs to treat persistent pharmaceutical pollutants, we propose an electrochemical Fenton treatment process that is catalyzed by the use of a commercially available MOF material to degrade TC. The efficiency of H2O2 generation in the IrO2/carbon felt setup is highlighted. However, electrochemical oxidation with H2O2 production (ECO-H2O2) alone is not enough to achieve complete TC removal, attributed to the formation of weak oxidant species. Incorporating Basolite®F300 in the heterogeneous electro-Fenton (HEF) process results in complete TC removal within 40 min, showcasing its efficacy. Additionally, this study explores the effect of varying MOF concentrations, indicating optimal removal rates at 100 mg L−1 due to a balance of kinetics and limitation of active sites of the catalysts. Furthermore, the impact of the applied current on TC removal is investigated, revealing a proportional relationship between current and removal rates. The analysis of energy efficiency emphasizes 50 mA as the optimal current, however, balancing removal efficiency with electrical energy consumption. This work highlights the potential of Basolite®F300 as an effective catalyst in the HEF process for pollutant abatement, providing valuable insights into optimizing electrified water treatment applications with MOF nanomaterials to treat organic pollutants.
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