Influence of Membrane Thickness and Polyvinylpyrrolidone on Cellulose Acetate FO Membranes for Microalgae Harvesting

Authors

  • Aida Isma Mohamad Idris Centre for Water Research, Faculty of Engineering, Built Environment and Information Technology, SEGi University, Kota Damansara 47810 Selangor Darul Ehsan, Malaysia. https://orcid.org/0000-0003-3691-4835
  • Fathima Hamaza Haseem Deen Centre for Water Research, Faculty of Engineering, Built Environment and Information Technology, SEGi University, Kota Damansara 47810 Selangor Darul Ehsan, Malaysia.
  • Munira Mohammad Centre for Water Research, Faculty of Engineering, Built Environment and Information Technology, SEGi University, Kota Damansara 47810 Selangor Darul Ehsan, Malaysia. https://orcid.org/0000-0001-7626-9135
  • Ma. Grace C. Sumaria Department of Agricultural and Biosystems Engineering, Faculty of Engineering, Visayas State University, Visca, Baybay City, Leyte, 6521-A, Philippines https://orcid.org/0009-0006-4339-884X

DOI:

https://doi.org/10.32945/atr4813.2026

Keywords:

Cellulose acetate, Flux, Membrane, Thickness, Polyvinylpyrrolidone

Abstract

Background: Efficient and energy-saving microalgae harvesting is critical for sustainable biofuel production. Forward osmosis (FO) offers a low-energy alternative driven by osmotic pressure, where membrane characteristics such as porosity and hydrophilicity strongly influence performance.

Objective: This study aimed to fabricate and evaluate cellulose acetate (CA) membranes enhanced with polyvinylpyrrolidone (PVP) for improved FO performance in microalgae harvesting.

Methods: CA membranes were prepared via phase inversion with varying PVP concentrations (1g, 2g, and 3g) as a pore-forming agent. Membranes with casting thicknesses of 200μm and 250μm were tested. Water flux and porosity were measured using distilled water as the feed solution and 1M NaCl as the draw solution. The optimal membrane was further tested with 5M and 6M NaCl solutions to evaluate microalgae concentration performance.

Results: The membrane with 200μm thickness and 3g PVP demonstrated the highest water flux (2.5L m⁻² h⁻¹) and porosity (71%). Increased PVP content improved membrane hydrophilicity and pore structure, enhancing performance. In microalgae harvesting, the 6M NaCl draw solution generated higher water flux and biomass concentration than 5M NaCl due to its stronger osmotic gradient. The 6M NaCl achieved a biomass concentration of 848 ± 193mg L⁻¹, compared to 575 ± 193mg L⁻¹ for the 5M solution.

Conclusion: Optimizing membrane composition and draw solution concentration significantly improves FO efficiency. A CA membrane with 3g PVP at 200μm thickness, combined with a 6M NaCl draw solution, offers enhanced water flux and biomass concentration, demonstrating strong potential for energy-efficient microalgae harvesting.

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Forward osmosis system configuration in this study.

Submitted

2025-10-12

Accepted

2025-12-12

Published

2026-05-14

How to Cite

Mohamad Idris, A. I., Haseem Deen, F. H., Mohammad, M., & Sumaria, M. G. C. (2026). Influence of Membrane Thickness and Polyvinylpyrrolidone on Cellulose Acetate FO Membranes for Microalgae Harvesting. Annals of Tropical Research, 48(1), 18–29. https://doi.org/10.32945/atr4813.2026

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Original Research Article
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