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首页> 外文期刊>Journal of power sources >Improved dye degradation and simultaneous electricity generation in a photoelectrocatalytic microbial fuel cell equipped with AgBr/CuO hybrid photocathode
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Improved dye degradation and simultaneous electricity generation in a photoelectrocatalytic microbial fuel cell equipped with AgBr/CuO hybrid photocathode

机译:具有AGBR / CUO杂交光电阴极的光电催化微生物燃料电池中改善了染料降解和同时发电

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摘要

Cathodic degradation of reactive black 5 (RB5) dye with simultaneous power production is effectively carried out in a dual-chambered photoelectrocatalytic microbial fuel cell (Photo-MFC) comprising of a bioanode and an AgBr/CuO hybrid photocathode under both light illumination and dark condition. The performance of this composite is compared with AgBr, CuO and also bare graphite in terms of MFC produced power density and also its ability to degrade RB5 dye. The synthesized photocatalysts are characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), UV-vis diffuse reflectance spectra (UV-vis DRS), and their electrochemical behavior is evaluated by linear sweep voltammetry (LSV) and electrochemical impedance spectroscopy (EIS). The results show that maximum RB5 degradation efficiency by AgBr/CuO photocathode is 55.56% over 72 h under light illumination which is greater than what was obtained in dark condition (16.36%) and also with bare graphite. The MFC with AgBr/CuO-assisted photocathode under light irradiation reached a maximum power density of 61.11 mW m(-2) which is higher than the produced density for bare graphite. These results show that the synergic effects of biological anode and light-sensitive cathode can improve the output of MFCs.
机译:在双腔光电催化微生物燃料电池(Photo-MFC)中有效地进行了具有同时电力产生的反应性黑5(RB5)染料的阴极降解,其包含在光照和暗状态下的生物潮和Agbr / CuO杂交光电阴极。将该复合材料的性能与Agbr,CuO和MFC产生的功率密度的功率密度和降解RB5染料的能力进行比较。合成的光催化剂的特征在于X射线衍射(XRD),扫描电子显微镜(SEM),UV-VI扩散反射谱(UV-VIS DRS),并通过线性扫描伏安法(LSV)和电化学阻抗评估其电化学行为光谱学(EIS)。结果表明,在光照射下,Agbr / CuO光电阴极的最大RB5降解效率为55.56%超过72小时,大于暗条件(16.36%)和裸石墨中获得的。在光照射下的MFC具有AGBR / CuO辅助光电阴极,最大功率密度为61.11mW m(-2),其高于裸石墨的产生密度。这些结果表明,生物阳极和光敏阴极的协同作用可以改善MFC的输出。

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