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General performance, kinetic modification, and key regulating factor recognition of microalgae-based sulfonamide removal. | LitMetric

General performance, kinetic modification, and key regulating factor recognition of microalgae-based sulfonamide removal.

J Hazard Mater

Shandong Key Laboratory of Water Pollution Control and Resource Reuse, School of Environmental Science & Engineering, Shandong University, Qingdao, Shandong 266237, China; College of Chemistry, Chemical Engineering and Materials Science, Shandong Normal University, 88 Wenhua East Road, Jinan, Shandong 250014, China.

Published: August 2024

AI Article Synopsis

  • Sulfonamides are commonly found in water treatment plants, prompting the need for effective removal strategies using microalgal cultivation to reduce ecological risks and recover resources.
  • The study compiles data from over 100 sources to analyze the biodegradation potential and toxicity of various sulfonamide subclasses, proposing the best options for treatment.
  • It introduces a modified kinetic model for antibiotic removal, highlights important factors for optimal microalgal selection, and suggests further research on long-term antibiotic removal performance and toxicity interactions.

Article Abstract

Sulfonamides have been widely detected in water treatment plants. Advanced wastewater treatment for sulfonamide removal based on microalgal cultivation can reduce the ecological risk after discharge, achieve carbon fixation, and simultaneously recover bioresource. However, the general removal performance, key factors and their impacts, degradation kinetics, and potential coupling technologies have not been systematically summarized. To guide the construction and enhance the efficient performance of the purification system, this study summarizes the quantified characteristics of sulfonamide removal based on more than 100 groups of data from the literature. The biodegradation potential of sulfonamides from different subclasses and their toxicity to microalgae were statistically analyzed; therefore, a preferred option for further application was proposed. The mechanisms by which the properties of both sulfonamides and microalgae affect sulfonamide removal were comprehensively summarized. Thereafter, multiple principles for choosing optimal microalgae were proposed from the perspective of engineering applications. Considering the microalgal density and growth status, a modified antibiotic removal kinetic model was proposed with significant physical meaning, thereby resulting in an optimal fit. Based on the mechanism and regulating effect of key factors on sulfonamide removal, sensitive and feasible factors (e.g., water quality regulation, other than initial algal density) and system coupling were screened to guide engineering applications. Finally, we suggested studying the long-term removal performance of antibiotics at environmentally relevant concentrations and toxicity interactions for further research.

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Source
http://dx.doi.org/10.1016/j.jhazmat.2024.134891DOI Listing

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