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High Power Density from a Miniature Microbial Fuel Cell Using Shewanella oneidensis DSP10

机译:微型微生物燃料电池的高功率密度,使用沙瓦氏菌(Shewanella oneidensis)DSP10

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摘要

A miniature microbial fuel cell (mini-MFC) is described that demonstrates high output power per device cross-section (2.0 cm~2) and volume (1.2 cm~3).Shewanella oneidensis DSP10 in growth medium with lactate and buffered ferricyanide solutions were used as the anolyte and catholyte,respectively.Maximum power densities of 24 and 10 mW/m~2 were measured using the true surface areas of reticulated vitreous carbon (RVC) and graphite felt (GF) electrodes without the addition of exogenous mediators in the anolyte.Current densities at maximum power were measured as 44 and 20 mA/m~2 for RVC and GF,while short circuit current densities reached 32 mA/m~2 for GF anodes and 100 mA/m~2 for RVC.When the power density for GF was calculated using the cross sectional area of the device or the volume of the anode chamber,we found values (3 W/m~2,500 W/m~3) similar to the maxima reported in the literature.The addition of electron mediators resulted in current and power increases of 30-100%.These power densities were surprisingly high considering a pure S.oneidensis culture was used.We found that the short diffusion lengths and high surface-area-to-chamber volume ratio utilized in the mini-MFC enhanced power density when compared to output from similar macroscopic MFCs.
机译:描述了一种微型微生物燃料电池(mini-MFC),该微型燃料电池展示出每器件横截面(2.0 cm〜2)和体积(1.2 cm〜3)的高输出功率。在含乳酸和缓冲铁氰化物溶液的生长培养基中的沙瓦氏假单胞菌DSP10分别使用网状玻璃状碳(RVC)和石墨毡(GF)电极的真实表面积测量的最大功率密度分别为24和10 mW / m〜2,并且不添加外源介体。 RVC和GF的最大功率电流密度分别为44和20 mA / m〜2,而GF阳极的短路电流密度分别为32 mA / m〜2和RVC为100 mA / m〜2。使用装置的横截面积或阳极室的体积计算GF的功率密度,我们发现值(3 W / m〜2,500 W / m〜3)与文献中报道的最大值相似。电子介体导致电流和功率增加30-100%。考虑到使用纯链霉菌培养物,单位生物密度出乎意料地高。我们发现,与相似的宏观MFC的输出相比,迷你MFC中使用的短扩散长度和高表面积与腔室的体积比提高了功率密度。

著录项

  • 来源
    《Environmental Science & Technology》 |2006年第8期|p.2629-2634|共6页
  • 作者单位

    Chemistry Division,Naval Research Laboratory,4555 Overlook Avenue,SW,Washington,D.C.20375,Oceanography Division,Naval Research Laboratory,Building 1009,John C.Stennis Space Center,Mississippi 39529,Materials Science and Engineering Department,130 Rus;

    Chemistry Division,Naval Research Laboratory,4555 Overlook Avenue,SW,Washington,D.C.20375,Oceanography Division,Naval Research Laboratory,Building 1009,John C.Stennis Space Center,Mississippi 39529,Materials Science and Engineering Department,130 Rus;

    Chemistry Division,Naval Research Laboratory,4555 Overlook Avenue,SW,Washington,D.C.20375,Oceanography Division,Naval Research Laboratory,Building 1009,John C.Stennis Space Center,Mississippi 39529,Materials Science and Engineering Department,130 Rus;

    Chemistry Division,Naval Research Laboratory,4555 Overlook Avenue,SW,Washington,D.C.20375,Oceanography Division,Naval Research Laboratory,Building 1009,John C.Stennis Space Center,Mississippi 39529,Materials Science and Engineering Department,130 Rus;

    Chemistry Division,Naval Research Laboratory,4555 Overlook Avenue,SW,Washington,D.C.20375,Oceanography Division,Naval Research Laboratory,Building 1009,John C.Stennis Space Center,Mississippi 39529,Materials Science and Engineering Department,130 Rus;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 环境化学;
  • 关键词

  • 入库时间 2022-08-17 14:06:59

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