Biochar potential for pollutant removal during wastewater treatment: A comprehensive review of separation mechanisms, technological integration, and process analysis
Потенциал биоугля для удаления загрязнителей в процессе очистки сточных вод: всесторонний обзор механизмов разделения, технологической интеграции и анализа процессов
2025-01-02
SCID: 54.1/85nc2zjx
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adsorption mechanismsbiocharengineered biocharheavy metal removalpyrolysis conditions
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Abstract (AI)
The increasing urbanization and industrialisation worldwide are deteriorating ground and surface water quality. Biochar is derived from the pyrolysis of agro-residues, forestry residues, sewage sludge, fruit peels, poultry manure, and algal biomass. It has emerged as an efficient adsorbent for wastewater treatment. Modified biochar, treated with chemicals like ZnCl₂, KOH, and ZnO/ZnS, demonstrates enhanced performance over pristine biochar. Biochar derived from waste biomass stands out as a sustainable and efficient option. This review explores biochar production techniques, pre-treatment methods, and key characteristics that affect its effectiveness, with a focus on studies published over the past decade. Pollutant removal primarily depends on impurity types, with significant contaminants including nitrate, fluoride, phosphorus, ammonia, and heavy metals like Cd, As, Pb, and Cu. Key mechanisms include ion exchange, surface complexation, and physical adsorption, enabled by biochar multi-functional groups, high adsorption capacity, and large surface area. Pyrolytic process conditions, such as temperature and residence time, shape the quality of biochar. Engineered biochar, modified with doped ions, steam/CO₂ activation, or magnetic properties, achieves up to 95 % pollutant removal efficiency, combining effectiveness, cost-efficiency, and environmental sustainability. This article offers a thorough summary of the most recent developments in the production of biochar, its uses in wastewater, and the adsorption processes for the removal of pollutants and heavy metals over the previous ten years. Additionally, techno-economic and regeneration studies highlight biochar feasibility. Future research perspectives and challenges emphasise the role of biochar in sustainable waste management practices, offering optimised solutions for environmental remediation. • Higher surface area and removal efficiency can be seen with engineered biochar. • Biochar for the removal of pollutants from wastewater may lead to sustainability. • Comparative analysis of treated char and their mechanism in water treatment. • Cost analysis of adsorbents for removal of targeted pollutants.
Key Findings
1
Biochar produced from diverse waste biomass (agro-residues, forestry residues, sewage sludge, fruit peels, poultry manure, algal biomass) is an efficient, sustainable adsorbent for wastewater treatment.
2
Chemical and physical modifications (e.g., ZnCl₂, KOH, ZnO/ZnS doping, steam/CO₂ activation, magnetic modification) substantially enhance biochar performance compared to pristine biochar.
3
Engineered biochar can achieve up to 95% pollutant removal efficiency for contaminants including nitrate, fluoride, phosphorus, ammonia, and heavy metals (Cd, As, Pb, Cu).
4
Primary pollutant removal mechanisms are ion exchange, surface complexation, and physical adsorption, enabled by multifunctional groups, high adsorption capacity, and large surface area of biochar.
5
Pyrolysis conditions (temperature, residence time) and pre-treatment strongly influence biochar quality; techno-economic and regeneration studies indicate biochar's feasibility and cost-efficiency for sustainable wastewater remediation.
Research Object
Biochar used for wastewater treatment (including pristine and engineered/modified biochar)
Research Subject
Mechanisms and efficiency of pollutant removal (ion exchange, surface complexation, physical adsorption) and related production/modification, techno-economic and regeneration aspects affecting biochar performance for removing nitrates, fluoride, phosphorus, ammonia, and heavy metals from wastewater
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2025-01-02
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