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Effects of Fe, Ni, and Fe/Ni metallic nanoparticles on power production and biosurfactant production from used vegetable oil in the anode chamber of a microbial fuel cell

机译:Fe,Ni和Fe / Ni金属纳米颗粒对微生物燃料电池阳极室中用过的植物油发电和生物表面活性剂产生的影响

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摘要

In this study, metallic nanoparticles (Fe, Ni, and Fe/Ni) were used as cathode catalysts to enhance power production and to improve the anode performance of a two-chambered microbial fuel cell (MFC). The metallic nanoparticles were rod-shaped and produced by the precipitation/co-precipitation method. A biosurfactant was produced in the anode chamber of the MFC from used vegetable oil by the bacteria Serratia sp. Overall cell voltage, power density, bacterial growth, and biosurfactant production were studied by applying different types of metallic nanoparticles to the cathode electrode. The influence of various types of nanoparticles on the impedance of the MFC was also investigated by electrochemical impedance spectroscopy (EIS), including analyses of anode impedance, cathode impedance, anode solution resistance, cathode solution resistance, and membrane resistance. The nanoparticles improved MFC performance in the following order: Fe>Ni> Fe/Ni. The addition of 1.5mg/cm~2 Fe nanoparticles to the cathode surface enhanced power production by over 500% to 66.4 mW/m~3, promoted bacterial growth and biosurfactant production in the anode solution by 132.5% and 32.0%, respectively, and reduced anode impedance, cathode impedance, and membrane resistance by 26.8%, 81.6%, and 33.8% to 159.00 Ω, 7.69 Ω, and 261.09 Ω, respectively. For the first time, biosurfacant production in the anode chamber of the MFC was promoted by using the metallic nanoparticles as cathode catalysts. By improving the cathode properties, this study showed a new way to manipulated the performance of the anode chamber of the MFC.
机译:在这项研究中,金属纳米颗粒(Fe,Ni和Fe / Ni)被用作阴极催化剂,以提高发电量并改善两腔微生物燃料电池(MFC)的阳极性能。金属纳米颗粒为棒状,并通过沉淀/共沉淀法制备。生物表面活性剂是由Serratia sp。细菌从用过的植物油中在MFC的阳极室中产生的。通过将不同类型的金属纳米粒子应用于阴极电极,研究了总体电池电压,功率密度,细菌生长和生物表面活性剂的产生。还通过电化学阻抗谱(EIS)研究了各种类型的纳米颗粒对MFC阻抗的影响,包括对阳极阻抗,阴极阻抗,阳极溶液电阻,阴极溶液电阻和膜电阻的分析。纳米粒子按以下顺序改善了MFC性能:Fe> Ni> Fe / Ni。在阴极表面添加1.5mg / cm〜2 Fe纳米颗粒,可将功率产生提高500%以上,达到66.4 mW / m〜3,在阳极溶液中分别促进细菌生长和生物表面活性剂产生,分别达到132.5%和32.0%,并且将阳极阻抗,阴极阻抗和膜电阻分别降低了26.8%,81.6%和33.8%至159.00Ω,7.69Ω和261.09Ω。第一次,通过使用金属纳米颗粒作为阴极催化剂促进了MFC阳极室中生物表面活性剂的生产。通过改善阴极性能,这项研究显示了一种新的方式来控制MFC阳极室的性能。

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  • 来源
    《Waste Management》 |2017年第8期|169-177|共9页
  • 作者单位

    Department of Civil and Environmental Engineering College of Engineering, Southern Illinois University, 1230 Lincoln Dr., Carbondale, IL 62901, USA,Department of Civil and Environmental Engineering, Cullen College of Engineering, University of Houston, 4800 Calhoun Rd., Houston, TX 77204, USA;

    Department of Civil and Environmental Engineering, Cullen College of Engineering, University of Houston, 4800 Calhoun Rd., Houston, TX 77204, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Metallic nanoparticle; Microbial fuel cell; Used vegetable oil; Biosurfactant;

    机译:金属纳米粒子;微生物燃料电池;用过的植物油;生物表面活性剂;

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