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May 8, 2026Sustainability0 citationsOpen Access

Sustainable Treatment of Fisheries Wastewater Using Azadirachta indica Leaf Biocoagulant: Optimization of Chemical Oxygen Demand and Total Suspended Solid Removal

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MIMuhammad Fauzul ImronRMRikky Ramadhan MustofaWDWahid Dianbudiyanto

Key Points

  • The study aims to optimize the use of neem leaf biocoagulant for reducing total suspended solids (TSS) and chemical oxygen demand (COD) in fisheries wastewater.
  • Utilized response surface methodology (RSM) with Box–Behnken Design (BBD) involving three variables: biocoagulant concentration, fast stirring speed, and sedimentation time.
  • Characterized biocoagulant using Fourier Transform Infrared Spectroscopy (FTIR), Scanning Electron Microscopy (SEM), and other techniques.
  • Statistical analysis confirmed significant model effectiveness with high coefficients of determination.
  • Achieved TSS removal of 88.72% and COD removal of 79.98% under optimal conditions (79.8 mg/L biocoagulant, 100 rpm stirring speed, 27.5 min sedimentation).
  • The developed quadratic models showed strong reliability (R2 = 0.9111 for TSS and 0.9419 for COD).
  • The fast stirring speed did not significantly affect the outcomes, while the concentration and sedimentation time were critical.

Abstract

Fisheries wastewater contains high levels of suspended solids and organic matter, posing significant environmental risks and necessitating effective and sustainable treatment approaches. This study aims to determine the characteristics of the neem (Azadirachta indica) leaf biocoagulant, assess the interactions among research variables, and optimize its use to reduce total suspended solids (TSS) and chemical oxygen demand (COD) levels in fisheries wastewater. The method used is response surface methodology (RSM), specifically the Box–Behnken Design (BBD), which involves three variables (biocoagulant concentration, fast stirring speed, and sedimentation time) and two responses (TSS and COD removal). Characterization results (Fourier Transform Infrared Spectroscopy (FTIR), Scanning Electron Microscopy (SEM), X-ray Diffraction (XRD), and zeta potential) indicated that the biocoagulant contains functional groups such as hydroxyl, carboxyl, and amine, contributing to coagulation–flocculation through adsorption and polymer bridging mechanisms. Statistical analysis confirmed that the developed quadratic models were significant (p-value < 0.05), with high F-values, non-significant lack of fit, and strong coefficients of determination (R2 = 0.9111 for TSS and 0.9419 for COD), along with low coefficients of variation (CV < 5%), indicating good model reliability. Although the model generally has a significant effect on the response, the fast stirring speed does not, while the other two factors do. The optimal conditions (based on desirability) were determined to be a biocoagulant concentration of 79.8 mg/L, a fast stirring speed of 100 rpm, and a sedimentation time of 27.5 min. Under these conditions, TSS and COD removals of 88.72% and 79.98%, respectively, were achieved. These findings demonstrate the potential of neem leaf biocoagulant as a sustainable, environmentally friendly alternative to conventional chemical coagulation, supporting cleaner production in aquaculture systems.

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Cite This Study

Imron et al. (2026) studied this question.

synapsesocial.com/papers/69fd7ef7bfa21ec5bbf07530https://doi.org/10.3390/su18094466
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