Biochar-based adsorption for heavy metal removal in water: a sustainable and cost-effective approach.

IF 3.2 3区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL
Jalal Bayar, Nawab Ali, Younsuk Dong, Uzair Ahmad, Muhammad Mehran Anjum, Gul Roz Khan, Muhammad Zaib, Arshad Jalal, Rovaid Ali, Liaqat Ali
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Abstract

The increasing contamination of aquatic bodies by heavy metals poses a significant threat to environment and human health, necessitates innovative, sustainable and cost-effective remediation strategies. Due to their persistence and toxicity, heavy metals like copper (Cu), lead (Pb), mercury (Hg), and cadmium (Cd) pose severe threats, even in trace amounts. Traditional removal methods of these heavy metals, like chemical precipitation, oxidation/reduction, filtration, ion exchange, membrane separation, and adsorption, are costly, inefficient, and have drawbacks. As an efficient and low-cost adsorbent, biochar has the potential for heavy metal remediation from water. Biochar is a versatile carbonaceous material produced through pyrolysis of organic wastes, emerged as a powerful adsorbent for heavy metal removal from contaminated water. The unique property of biochar makes it an effective medium immobilizing and capturing of heavy metals like Pb, Cd, As and Hg. Various factors affect its adsorption potential and capacity. Feedstocks type, composition, activation methods, and production processes including the pyrolysis temperature, temperature rate and residence time significantly impact the efficacy of biochar. Therefore, this review has assessed, compared, and contrasted different forms of biochar along with their production methods, modification techniques and mechanisms for their potential use as an adsorbent for heavy metal removal from the contaminated water. Modified biochar offers an environmentally friendly and cost-effective solution for water purification and remediation of toxic heavy metals from water. This review highlights the biochar potential as a crucial component for future research projects focusing on water treatment technologies, providing avenues for safer and cleaner water resources.

基于生物炭的吸附技术去除水中的重金属:一种可持续且具有成本效益的方法。
重金属对水体的污染日益严重,对环境和人类健康构成了重大威胁,因此必须采取创新、可持续和具有成本效益的补救策略。由于铜(Cu)、铅(Pb)、汞(Hg)和镉(Cd)等重金属具有持久性和毒性,即使是痕量的重金属也会造成严重威胁。去除这些重金属的传统方法,如化学沉淀、氧化/还原、过滤、离子交换、膜分离和吸附等,都存在成本高、效率低等缺点。作为一种高效、低成本的吸附剂,生物炭具有修复水中重金属的潜力。生物炭是一种通过热解有机废物而产生的多功能碳质材料,是一种去除受污染水体中重金属的强力吸附剂。生物炭的独特性质使其成为固定和捕获铅、镉、砷和汞等重金属的有效介质。影响其吸附潜力和能力的因素有很多。原料类型、成分、活化方法和生产工艺(包括热解温度、升温速率和停留时间)都会对生物炭的功效产生重大影响。因此,本综述对不同形式的生物炭及其生产方法、改性技术和机制进行了评估、比较和对比,以了解其作为吸附剂去除受污染水体中重金属的潜力。改性生物炭为水净化和修复水中有毒重金属提供了一种环保且经济高效的解决方案。本综述强调了生物炭作为未来水处理技术研究项目重要组成部分的潜力,为更安全、更清洁的水资源提供了途径。
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来源期刊
Environmental Geochemistry and Health
Environmental Geochemistry and Health 环境科学-工程:环境
CiteScore
8.00
自引率
4.80%
发文量
279
审稿时长
4.2 months
期刊介绍: Environmental Geochemistry and Health publishes original research papers and review papers across the broad field of environmental geochemistry. Environmental geochemistry and health establishes and explains links between the natural or disturbed chemical composition of the earth’s surface and the health of plants, animals and people. Beneficial elements regulate or promote enzymatic and hormonal activity whereas other elements may be toxic. Bedrock geochemistry controls the composition of soil and hence that of water and vegetation. Environmental issues, such as pollution, arising from the extraction and use of mineral resources, are discussed. The effects of contaminants introduced into the earth’s geochemical systems are examined. Geochemical surveys of soil, water and plants show how major and trace elements are distributed geographically. Associated epidemiological studies reveal the possibility of causal links between the natural or disturbed geochemical environment and disease. Experimental research illuminates the nature or consequences of natural or disturbed geochemical processes. The journal particularly welcomes novel research linking environmental geochemistry and health issues on such topics as: heavy metals (including mercury), persistent organic pollutants (POPs), and mixed chemicals emitted through human activities, such as uncontrolled recycling of electronic-waste; waste recycling; surface-atmospheric interaction processes (natural and anthropogenic emissions, vertical transport, deposition, and physical-chemical interaction) of gases and aerosols; phytoremediation/restoration of contaminated sites; food contamination and safety; environmental effects of medicines; effects and toxicity of mixed pollutants; speciation of heavy metals/metalloids; effects of mining; disturbed geochemistry from human behavior, natural or man-made hazards; particle and nanoparticle toxicology; risk and the vulnerability of populations, etc.
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