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High rate copper and energy recovery in microbial fuel cells

机译:微生物燃料电池中的高速率铜和能量回收

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摘要

Bioelectrochemical systems (BESs) are a novel, promising technology for the recovery of metals. The prerequisite for upscaling from laboratory to industrial size is that high current and high power densities can be produced. In this study we report the recovery of copper from a copper sulfate stream (2 g L-1 Cu2+) using a laboratory scale BES at high rate. To achieve this, we used a novel cell configuration to reduce the internal voltage losses of the system. At the anode, electroactive microorganisms produce electrons at the surface of an electrode, which generates a stable cell voltage of 485 mV when combined with a cathode where copper is reduced. In this system, a maximum current density of 23 A m-2 in combination with a power density of 5.5 W m-2 was produced. XRD analysis confirmed 99% purity in copper of copper deposited onto cathode surface. Analysis of voltage losses showed that at the highest current, most voltage losses occurred at the cathode, and membrane, while anode losses had the lowest contribution to the total voltage loss. These results encourage further development of BESs for bioelectrochemical metal recovery.
机译:生物电化学系统(BESs)是一种新颖的,有前途的金属回收技术。从实验室规模升级到工业规模的前提条件是可以产生高电流和高功率密度。在这项研究中,我们报告了使用实验室规模的BES从硫酸铜流(2 g L -1 Cu 2 + )中回收铜的速率。为此,我们使用了新颖的电池配置来减少系统的内部电压损耗。在阳极处,电活性微生物在电极表面产生电子,当与阴极(铜被还原)结合时,可产生485 mV的稳定电池电压。在该系统中,最大电流密度为23 A m -2 ,功率密度为5.5 W m -2 。 XRD分析证实沉积在阴极表面上的铜的铜纯度为99%。电压损耗分析表明,在最大电流下,大部分电压损耗发生在阴极和膜上,而阳极损耗对总电压损耗的贡献最小。这些结果鼓励了用于生物电化学金属回收的BES的进一步发展。

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