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Enhancing methane oxidation in a bioelectrochemical membrane reactor using a soluble electron mediator

机译:使用可溶性电子介质增强生物电化学膜反应器中的甲烷氧化

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摘要

Abstract Background Bioelectrochemical methane oxidation catalysed by anaerobic methanotrophic archaea (ANME) is constrained by limited methane bioavailability as well as by slow kinetics of extracellular electron transfer (EET) of ANME. In this study, we tested a combination of two strategies to improve the performance of methane-driven bioelectrochemical systems that includes (1) the use of hollow fibre membranes (HFMs) for efficient methane delivery to the ANME organisms and (2) the amendment of ferricyanide, an effective soluble redox mediator, to the liquid medium to enable electrochemical bridging between the ANME organisms and the anode, as well as to promote EET kinetics of ANME. Results The combined use of HFMs and the soluble mediator increased the performance of ANME-based bioelectrochemical methane oxidation, enabling the delivery of up to 196 mA m−2, thereby outperforming the control system by 244 times when HFMs were pressurized at 1.6 bar. Conclusions Improving methane delivery and EET are critical to enhance the performance of bioelectrochemical methane oxidation. This work demonstrates that by process engineering optimization, energy recovery from methane through its direct oxidation at relevant rates is feasible.
机译:摘要背景,厌氧型甲肾上腺素(ANME)催化的生物电化学甲烷氧化受到甲烷生物利用度的限制,以及ANME的细胞外电子转移(EET)的缓慢动力学。在这项研究中,我们测试了两种策略的组合,以改善甲烷驱动的生物电化学系统的性能,所述生物电影学系统包括(1)使用中空纤维膜(HFMS)以获得高效甲烷递送至ANME生物和(2)修正Ferricyanide,一种有效的可溶性氧化还原介体,用于液体介质,使得在ANME生物和阳极之间能够在阳极之间进行电化学桥接,以及促进ANME的EET动力学。结果HFMS和可溶性介体的组合使用增加了基于ANME的生物电化学甲烷氧化的性能,使得能够递送高达196mA M-2,从而在1.6巴中加压HFM时,将控制系统优于244倍。结论改善甲烷递送和EET对增强生物电化学甲烷氧化的性能至关重要。这项工作表明,通过过程工程优化,通过在相关率下通过直接氧化从甲烷中恢复能量是可行的。

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