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Microalgal-bacterial biofilms for wastewater treatment: Operations, performances, mechanisms, and uncertainties

期刊

SCIENCE OF THE TOTAL ENVIRONMENT
卷 907, 期 -, 页码 -

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ELSEVIER
DOI: 10.1016/j.scitotenv.2023.167974

关键词

Microalgal-bacterial biofilm; Biofilm configuration; Operating conditions; Pollutants removal; Microbial community; Microalgal-bacterial interactions

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Microalgal-bacterial biofilms have great potential in wastewater treatment, but their advantages and limitations vary among different types of biofilms. This study classified the biofilms into different categories and identified their characteristics and limitations.
Microalgal-bacterial biofilms have been increasingly considered of great potential in wastewater treatment due to the advantages of microalgal-bacterial synergistic pollutants removal/recovery, CO2 sequestration, and cost-effective biomass-water separation. However, such advantages may vary widely among different types of microalgal-bacterial biofilms, as the biofilms could be formed on different shapes and structures of attachment substratum, generating false hope for certain systems in large-scale wastewater treatment if the operating conditions and pollutants removal properties are evaluated based on the general term microalgal-bacterial biofilm. This study, therefore, classified microalgal-bacterial biofilms into biofilms formed on 2D substratum, biofilms formed on 3D substratum, and biofilms formed without substratum (i.e. microalgal-bacterial granular sludge, MBGS). Biofilms formed on 2D substratum display higher microalgae fractions and nutrients removal efficiencies, while the adopted long hydraulic retention times were unacceptable for large-scale wastewater treatment. MBGS are featured with much lower microalgae fractions, most efficient pollutants removal, and acceptable retention times for realistic application, yet the feasibility of using natural sunlight should be further explored. 3D substratum systems display wide variations in operating conditions and pollutants removal prop-erties because of diversified substratum shapes and structures. 2D and 3D substratum biofilms share more common in eukaryotic and prokaryotic microbial community structures, while MGBS biofilms are more enriched with microorganisms favoring EPS production, biofilm formation, and denitrification. The specific roles of stratified extracellular polymeric substances (EPS) in nutrients adsorption and condensation still require in-depth exploration. Nutrients removal uncertainties caused by microalgal-bacterial synergy decoupling under insuffi-cient illumination, limited microbial community control, and possible greenhouse gas emission exacerbation arising from microalgal N2O generation were also indicated. This review is helpful for revealing the true po-tential of applying various microalgal-bacterial biofilms in large-scale wastewater treatment, and will provoke some insights on the challenges to the ideal state of synergistic pollutants reclamation and carbon neutrality via microalgal-bacterial interactions.

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