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A review of prospects and current scenarios of biomass co-pyrolysis for water treatment

Biomass Conversion and Biorefinery 2022 29 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 40 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Shifa Zuhara, Gordon McKay, Hamish R. Mackey Gordon McKay, Tareq Al‐Ansari, Tareq Al‐Ansari, Gordon McKay, Gordon McKay, Tareq Al‐Ansari, Gordon McKay, Gordon McKay, Gordon McKay, Hamish R. Mackey

Summary

This review examines biomass co-pyrolysis as a strategy to produce enhanced biochars for water treatment, finding that combining different biomass feedstocks can improve biochar surface area and porosity, making the resulting materials more effective adsorbents for removing contaminants including microplastics.

Study Type Environmental

With ever-growing population comes an increase in waste and wastewater generated. There is ongoing research to not only reduce the waste but also to increase its value commercially. One method is pyrolysis, a process that converts wastes, at temperatures usually above 300 °C in a pyrolysis unit, to carbon-rich biochars among with other useful products. These chars are known to be beneficial as they can be used for water treatment applications; certain studies also reveal improvements in the biochar quality especially on the surface area and pore volume by imparting thermal and chemical activation methods, which eventually improves the uptake of pollutants during the removal of inorganic and organic contaminants in water. Research based on single waste valorisation into biochar applications for water treatment has been extended and applied to the pyrolysis of two or more feedstocks, termed co-pyrolysis, and its implementation for water treatment. The co-pyrolysis research mainly covers activation, applications, predictive calculations, and modelling studies, including isotherm, kinetic, and thermodynamic adsorption analyses. This paper focuses on the copyrolysis biochar production studies for activated adsorbents, adsorption mechanisms, pollutant removal capacities, regeneration, and real water treatment studies to understand the implementation of these co-pyrolyzed chars in water treatment applications. Finally, some prospects to identify the future progress and opportunities in this area of research are also described. This review provides a way to manage solid waste in a sustainable manner, while developing materials that can be utilized for water treatment, providing a double target approach to pollution management.

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