Electrochemical degradation of some toxic molecules- a concise review of recent studies

IF 7.4 2区 工程技术 Q1 ENGINEERING, CHEMICAL Journal of Environmental Chemical Engineering Pub Date : 2024-12-01 DOI:10.1016/j.jece.2024.114916
Aashutosh Dube , Shweta J. Malode , Mohammed Ali Alshehri , Nagaraj P. Shetti
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Abstract

Electrochemical degradation is a sophisticated and environmentally sustainable method for treating hazardous substances in water and wastewater. This technique uses electrical energy to facilitate the oxidation and reduction of contaminants, converting them into less damaging or inert by-products. The approach is adaptable and proficient at degrading diverse contaminants, encompassing organic chemicals, heavy metals, and enduring pollutants such as pesticides and medicines. Principal advantages encompass elevated efficiency, enhanced controllability, and elimination of supplementary chemicals. Analytical methods, including High-Performance Liquid Chromatography (HPLC) and Gas Chromatography-Mass Spectrometry (GC-MS), are utilized to assess degradation rates, examine the degradation process, identify by-products, and confirm removal efficacy. Application of metal oxide nanoparticles, metal oxide-based carbon nanostructures, granular activated carbon (GAC) as cost-effective material, and MXene demonstrated significant removal efficiency when optimum analytical parameters such as pH, charge density, suitable electrolyte, and degradation time were employed. Self-cleaning electrodes, ultrasonic cleaning devices, or flow-through systems may mitigate the fouling problem in the analysis. Utilization of advanced materials such as boron-doped diamond (BDD) or titanium suboxide (TiSO) exhibits higher corrosion and degradation resistance. Employ protective coatings on electrodes to prevent direct exposure to aggressive pollutants, thereby prolonging the lifespan of the electrodes. Current research aims to enhance electrode materials, improve process efficiency to reduce initial costs and combine sustainable energy sources with electrochemical systems to minimise power consumption, positioning electrochemical degradation as a viable approach for sustainable environmental remediation.
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一些有毒分子的电化学降解——最近研究的简要综述
电化学降解是一种复杂且环境可持续的处理水和废水中有害物质的方法。该技术利用电能促进污染物的氧化和还原,将其转化为破坏性较小或惰性的副产品。该方法适应性强,能有效降解多种污染物,包括有机化学品、重金属以及杀虫剂和药物等持久性污染物。主要优点包括提高效率、增强可控性和消除补充化学品。分析方法,包括高效液相色谱(HPLC)和气相色谱-质谱(GC-MS),用于评估降解率,检查降解过程,识别副产物,并确认去除效果。金属氧化物纳米颗粒、金属氧化物基碳纳米结构、颗粒活性炭(GAC)作为经济高效的材料,以及MXene的应用,在pH、电荷密度、合适的电解质和降解时间等最佳分析参数下,均显示出显著的去除效果。自清洁电极、超声波清洗装置或流动系统可以减轻分析中的结垢问题。利用先进的材料,如掺硼金刚石(BDD)或氧化钛(TiSO),具有更高的耐腐蚀和降解能力。在电极上使用保护涂层,以防止直接暴露于侵略性污染物,从而延长电极的寿命。目前的研究旨在改进电极材料,提高工艺效率以降低初始成本,并将可持续能源与电化学系统相结合以最大限度地减少功耗,将电化学降解定位为可持续环境修复的可行方法。
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来源期刊
Journal of Environmental Chemical Engineering
Journal of Environmental Chemical Engineering Environmental Science-Pollution
CiteScore
11.40
自引率
6.50%
发文量
2017
审稿时长
27 days
期刊介绍: The Journal of Environmental Chemical Engineering (JECE) serves as a platform for the dissemination of original and innovative research focusing on the advancement of environmentally-friendly, sustainable technologies. JECE emphasizes the transition towards a carbon-neutral circular economy and a self-sufficient bio-based economy. Topics covered include soil, water, wastewater, and air decontamination; pollution monitoring, prevention, and control; advanced analytics, sensors, impact and risk assessment methodologies in environmental chemical engineering; resource recovery (water, nutrients, materials, energy); industrial ecology; valorization of waste streams; waste management (including e-waste); climate-water-energy-food nexus; novel materials for environmental, chemical, and energy applications; sustainability and environmental safety; water digitalization, water data science, and machine learning; process integration and intensification; recent developments in green chemistry for synthesis, catalysis, and energy; and original research on contaminants of emerging concern, persistent chemicals, and priority substances, including microplastics, nanoplastics, nanomaterials, micropollutants, antimicrobial resistance genes, and emerging pathogens (viruses, bacteria, parasites) of environmental significance.
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