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Increasing the recovery of heavy metal ions using two microbial fuel cells operating in parallel with no power output

机译:使用两个并联无动力输出的微生物燃料电池来提高重金属离子的回收率

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摘要

The present study aimed to improve the performance of microbial fuel cells (MFCs) by using an intermittent connection period without power output. Connecting two MFCs in parallel improved the voltage output of both MFCs until the voltage stabilized. Electric energy was accumulated in two MFCs containing heavy metal ions copper, zinc, and cadmium as electron acceptors by connection in parallel for several hours. The system was then switched to discharge mode with single MFCs with a 1000-Omega resistor connected between anode and cathode. This method successfully achieved highly efficient removal of heavy metal ions. Even when the anolyte was run in sequencing batch mode, the insufficient voltage and power needed to recover heavy metals from the cathode of MFCs can be complemented by the developed method. The average removal ratio of heavy metal ions in sequencing batch mode was 67 % after 10 h. When the discharge time was 20 h, the removal ratios of zinc, copper, and cadmium were 91.5, 86.7, and 83.57 %, respectively; the average removal ratio of these ions after 20 h was only 52.1 % for the control group. Therefore, the average removal efficiency of heavy metal ions increased by 1.75 times using the electrons stored from the bacteria under the open-circuit conditions in parallel mode. Electrochemical impedance data showed that the anode had lower solution resistance and polarization resistance in the parallel stage than as a single MFC, and capacitance increased with the length of time in parallel.
机译:本研究旨在通过使用无功率输出的间歇连接时间来提高微生物燃料电池(MFCs)的性能。并联连接两个MFC可以改善两个MFC的电压输出,直到电压稳定为止。通过并联连接几个小时,在包含重金属离子铜,锌和镉作为电子受体的两个MFC中积累了电能。然后,使用单个MFC将系统切换到放电模式,该MFC的阳极和阴极之间连接了1000Ω电阻。该方法成功地实现了重金属离子的高效去除。即使当阳极电解液以顺序分批模式运行时,通过开发的方法也可以弥补从MFC阴极回收重金属所需的不足电压和功率。测序分批模式下重金属离子的平均去除率在10 h后为67%。放电时间为20 h时,锌,铜和镉的去除率分别为91.5%,86.7%和83.57%。对照组的这些离子在20 h后的平均去除率仅为52.1%。因此,在并联模式的开路条件下,利用细菌中存储的电子,重金属离子的平均去除效率提高了1.75倍。电化学阻抗数据表明,阳极并联时的溶解电阻和极化电阻均比单个MFC低,并且电容随并联时间的增加而增加。

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