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Complete Microbial Fuel Cell Fabrication Using Additive Layer Manufacturing

机译:使用添加剂层制造完全微生物燃料电池制造

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摘要

Improving the efficiency of microbial fuel cell (MFC) technology by enhancing the system performance and reducing the production cost is essential for commercialisation. In this study, building an additive manufacturing (AM)-built MFC comprising all 3D printed components such as anode, cathode and chassis was attempted for the first time. 3D printed base structures were made of low-cost, biodegradable polylactic acid (PLA) filaments. For both anode and cathode, two surface modification methods using either graphite or nickel powder were tested. The best performing anode material, carbon-coated non-conductive PLA filament, was comparable to the control modified carbon veil with a peak power of 376.7 µW (7.5 W m ) in week 3. However, PLA-based AM cathodes underperformed regardless of the coating method, which limited the overall performance. The membrane-less design produced more stable and higher power output levels (520−570 µW, 7.4−8.1 W m ) compared to the ceramic membrane control MFCs. As the final design, four AM-made membrane-less MFCs connected in series successfully powered a digital weather station, which shows the current status of low-cost 3D printed MFC development.
机译:通过提高系统性能和降低生产成本来提高微生物燃料电池(MFC)技术的效率对于商业化至关重要。在本研究中,首次建立包括所有3D印刷部件的添加剂制造(AM) - 已经包括诸如阳极,阴极和底盘的所有3D印刷部件。 3D印刷基础结构由低成本,可生物降解的聚乳酸(PLA)细丝制成。对于阳极和阴极,测试了使用石墨或镍粉的两个表面改性方法。最佳性能的阳极材料,碳涂覆的非导电PLA丝,与第3周内的峰值功率的控制改性碳面纱相当。然而,无论如何,PLA基于PLA的AM阴极表现不佳涂层方法限制了整体性能。与陶瓷膜控制MFC相比,薄膜的设计产生了更稳定和更高的功率输出水平(520-570μW,7.4-8.1W m)。作为最终设计,四个AM制作的膜较低的MFC串联连接成功为数字气象站供电,显示了低成本3D印刷MFC开发的当前状态。

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