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An upflow microbial fuel cell with an interior cathode: Assessment of the internal resistance by impedance Spectroscopy

机译:具有内部阴极的上流式微生物燃料电池:通过阻抗谱评估内阻

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An upflow microbial fuel cell (UMFC) system with a U-shaped cathode inside the anode chamber was developed and produced a maximum volumetric power of 29.2 W/m(3) at a volumetric loading rate of 3.40 kg COD/(m(3) day) and an operating temperature of 35 C while feeding sucrose continuously. The Coulombic efficiency decreased from 51.0% to 10.6% with the increase in the volumetric loading rate from 0.57 to 4.29 kg COD/(m(3) day). In addition, the lab-scale UMFC maintained soluble chemical oxygen demand (COD) removal efficiencies exceeding 90% and volatile fatty acid concentrations of similar to 40 mg/L, indicating efficient wastewater treatment. The analysis of impedance spectroscopy, generated by fitting experimental data into an equivalent circuit, revealed that at a volumetric loading rate of 3.40 kg COD/(m(3) day) the overall internal resistance was 17.13 ohm. This internal resistance was composed of electrolyte resistance (8.62 ohm), charge-transfer resistance (7.05 ohm), and diffusion resistance (1.46 ohm). Electrolyte resistance dominated throughout the entire range of loading rates. In addition, impedance spectroscopy demonstrated that both the anodic and the cathodic charge-transfer resistances were important limiting factors. To further improve the power output of the UMFC, we must reduce the electrolyte resistance by optimizing reactor configuration, reduce the anode charge- transfer resistances by selecting superior anodic microbiota, and reduce the cathodic charge- transfer resistance by exploring sustainable and efficient catalysts.
机译:开发了在阳极室内具有U形阴极的向上流动微生物燃料电池(UMFC)系统,在3.40 kg COD /(m(3))的容积加载速率下产生的最大容积功率为29.2 W / m(3)。天)和35℃的工作温度,同时连续加入蔗糖。库仑效率从51.0%下降到10.6%,体积装载率从0.57千克COD /(m(3)天)增加。此外,实验室规模的UMFC保持的可溶性化学需氧量(COD)去除效率超过90%,挥发性脂肪酸浓度接近40 mg / L,表明废水处理效率很高。通过将实验数据拟合到等效电路中而产生的阻抗谱分析表明,在3.40 kg COD /(m(3)天)的体积加载速率下,总内部电阻为17.13 ohm。该内部电阻由电解质电阻(8.62欧姆),电荷转移电阻(7.05欧姆)和扩散电阻(1.46欧姆)组成。在整个加载速率范围内,电解质电阻占主导地位。此外,阻抗谱表明,阳极和阴极的电荷转移电阻都是重要的限制因素。为了进一步提高UMFC的功率输出,我们必须通过优化反应器配置来降低电解质电阻,通过选择优良的阳极微生物群来降低阳极电荷转移电阻,并通过探索可持续和高效的催化剂来降低阴极电荷转移电阻。

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