Faculty of Chemical Engineering Technology, Universiti Malaysia Perlis, Arau, Malaysia.
School of Chemical Engineering and Advanced Materials, The University of Adelaide, Adelaide, Australia.
Environ Technol. 2022 Aug;43(19):2867-2880. doi: 10.1080/09593330.2021.1907451. Epub 2021 Apr 1.
The interactions within microbial, chemical and electronic elements in microbial fuel cell (MFC) system can be crucial for its bio-electrochemical activities and overall performance. Therefore, this study explored polynomial models by response surface methodology (RSM) to better understand interactions among anode pH, cathode pH and inoculum size for optimising MFC system for generation of electricity and degradation of 2,4-dichlorophenol. A statistical central composite design by RSM was used to develop the quadratic model designs. The optimised parameters were determined and evaluated by statistical results and the best MFC systematic outcomes in terms of current generation and chlorophenol degradation. Statistical results revealed that the optimum current density of 106 mA/m could be achieved at anode pH 7.5, cathode pH 6.3-6.6 and 21-28% for inoculum size. Anode-cathode pHs interaction was found to positively influence the current generation through extracellular electron transfer mechanism. The phenolic degradation was found to have lower response using these three parameter interactions. Only inoculum size-cathode pH interaction appeared to be significant where the optimum predicted phenolic degradation could be attained at pH 7.6 for cathode pH and 29.6% for inoculum size.
微生物燃料电池 (MFC) 系统中微生物、化学和电子元素之间的相互作用对其生物电化学活性和整体性能至关重要。因此,本研究通过响应面法 (RSM) 探索多项式模型,以更好地理解阳极 pH、阴极 pH 和接种物大小之间的相互作用,从而优化 MFC 系统,以实现发电和 2,4-二氯苯酚的降解。通过 RSM 采用统计中心复合设计来开发二次模型设计。通过统计结果和最佳 MFC 系统在电流产生和氯酚降解方面的结果来确定和评估最佳参数。统计结果表明,在阳极 pH 7.5、阴极 pH 6.3-6.6 和接种物大小 21-28%的条件下,可实现 106 mA/m 的最佳电流密度。发现阳极-阴极 pH 相互作用通过细胞外电子转移机制对电流产生产生积极影响。发现使用这三个参数相互作用时,酚类降解的响应较低。只有接种物大小-阴极 pH 相互作用似乎很重要,在这种情况下,阴极 pH 为 7.6 且接种物大小为 29.6%时,可达到最佳预测酚类降解。