Response surface optimization of microalgae microbial fuel cell (MMFC) enhanced by yeast immobilization for bioelectricity production

Chemosphere. 2022 Jan;287(Pt 3):132275. doi: 10.1016/j.chemosphere.2021.132275. Epub 2021 Sep 25.

Abstract

In this work, suspended and immobilized Saccharomyces cerevisiae yeast in alginate was utilized as a biocatalyst to interact with different concentrations of tofu wastewater for microalgae microbial fuel cell (MMFC) application. Operating conditions are one of the factors that impact the MMFC's performance, thus they must be optimized. The response surface approach was used to optimize operating conditions, which involved CCD-randomized by five levels of two variables. With an average voltage of 0.13 V, power density of 13.94 mW·m-2, and current density of 102.20 mA·m-2, bioelectricity output produced more suspended yeast than immobilized yeast. The average voltage of MMFC with immobilized yeast was 0.123 V, the power density was 11.25 mW·m-2, and the current density was 91.82 mA·m-2. Immobilized yeast, on the other hand, led in faster stabilization of the resulted electrical output. When compared to suspension yeast, immobilized yeast removed more COD. The best conditions were reached with a yeast concentration of 10.89% w/v and a wastewater concentration of 56.94%, resulting in a power density and COD removal of 11.25 mW·m-2 and 31.82%, respectively. The effect of yeast and wastewater concentrations on power density and COD removal revealed that the model was well supported by experimental results.

Keywords: Alginate microcapsule; COD removal; Immobilized yeast; Maximum power density; Sustainable energy resource.

MeSH terms

  • Bioelectric Energy Sources*
  • Electricity
  • Electrodes
  • Microalgae*
  • Saccharomyces cerevisiae
  • Wastewater

Substances

  • Waste Water