利用碳粉电极改性提高微生物燃料电池性能,用于低功耗传感器模块

M. Al-badani, P. L. Chong, Heng Siong Lim
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摘要

微生物燃料电池(MFC)是从有机化合物中获取能量的一项前景广阔的技术。然而,MFC 的低发电量仍然是阻碍其商业可行性的一个重大挑战。在这项研究中,我们使用碳粉(CP)、CP 与铁的混合物以及 CP 与柠檬酸钠和乙醇的混合物对不锈钢网(SSM)、碳布和碳毡电极进行了三种不同的改良。配备了 SSM 和 CP 阳极的 MFC 显示出 1046.89 mW.m-2 的显著功率密度。相比之下,裸 SSM 阳极的最大功率密度为 145.8 mW m-2。令人瞩目的是,带有 CP 阳极的 3D 改性 SSM(3D-SSM-CP)MFC 取得了重大突破,其最大功率密度达到了 1417.07 mW m-2。与未改良的 SSM 阳极相比,这一成就标志着性能的大幅提升,凸显了我们改良方法的有效性。随后,3D-SSM-CP 电极被集成到单腔 MFC 中,通过电源管理系统为 LoRaWAN 物联网设备供电。改进方法提高了 MFC 的性能,同时采用了低成本和简便的制造技术。这项研究的结果有望有助于提高 MFC 的性能,使其更接近成为一种实用的可再生能源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing microbial fuel cell performance with carbon powder electrode modifications for low-power sensors modules
Microbial Fuel Cell (MFC) is a promising technology for harnessing energy from organic compounds. However, the low power generation of MFCs remains a significant challenge that hinders their commercial viability. In this study, we reported three distinct modifications to the stainless-steel mesh (SSM), carbon cloth, and carbon felt electrodes using carbon powder (CP), a mixture of CP and ferrum, and a blend of CP with sodium citrate and ethanol. The MFC equipped with an SSM and CP anode showed a notable power density of 1046.89 mW.m-2. In comparison, the bare SSM anode achieved a maximum power density of 145.8 mW m-2. Remarkably, the 3D-modified SSM with a CP anode (3D-SSM-CP) MFC exhibited a substantial breakthrough, attaining a maximum power density of 1417.07 mW m-2. This achievement signifies a significant advancement over the performance of the unaltered SSM anode, underscoring the effectiveness of our modification approach. Subsequently, the 3D-SSM-CP electrode was integrated into single-chamber MFCs, which were used to power a LoRaWAN IoT device through a power management system. The modification methods improved the MFC performance while involving low-cost and easy fabricating techniques. The results of this study are expected to contribute to improving MFC's performance, bringing them closer to becoming a practical source of renewable energy.
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