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Copper ferrite supported reduced graphene oxide as cathode materials to enhance microbial electrosynthesis of volatile fatty acids from CO_2

机译:铜铁氧体负载氧化物还原作为阴极材料,以增强来自CO_2的挥发性脂肪酸的微生物电气合成

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Copper ferrite/reduced graphene oxide (CF/rGO) nanocomposites (NCs) was synthesized using the bio-combustion method and applied as a cathode catalyst in the microbial reduction of CO_2 to volatile fatty acids (VFAs) in a single chamber microbial electrosynthesis system (MES). The synthesized NCs exhibited a porous network-like structure with a high surface area of CF/rGO (158.22 m~2/g), which was 2.24 folds higher than that of CF. The Cyclic Voltammetry (CV) and Electrochemical Impedance Spectroscopy (EIS) analysis for CF/ rGO/Carbon cloth (Cc) revealed a high reduction current density of -7.3 A/m~2 and a low charge transfer resistance of 2.8 Ω. The isobutyrate and acetate in MES-2 (Cu/rGO/Cc) were produced at 35.37 g/m~2/d, which was 1.53 folds higher than that of MES-1 (bare Cc: 23.10 g/m~2/d). The columbic efficiency (77.78%) and total VFA concentration (1941.13 ± 83 mg COD/L) were noted to be 1.97 and 1.6 folds higher for MES-2 than MES-1, respectively. The Tafel plot drawn from the CV curves exhibited an exchange current density value of MES-2 that was 3.46 A/m~2, and this value was 1.19 and 33.92 folds higher than that of MES-1 and abiotic CF/rGO/Cc respectively. Field emission scanning electron microscopy (FESEM) observations revealed enhanced rod-shaped bacteria had grown on the cathode suggesting excellent biocompatible and multi-length scale porosity of CF/rGO catalysts for enhanced colonization of microbes. The phyla Proteobacteria (Betaproteobacteria), Bacteroidetes, and Firmicutes were highly abundant as the dominant microbial communities on the cathode, which might played a major role in bioelectrochemical CO_2 reduction to VFAs. The results from this study clearly demonstrate that the CF/rGO/Cc electrode could serve as a conductive element between microbes and bactericidal electrodes with excellent electrochemical properties to enable performance of the MES.
机译:铜铁氧体/还原氧化石墨烯(CF / RGO)纳米复合材料(NCS)中的溶液使用Bio-燃烧法合成,如在单个室微生物电合成系统挥发性脂肪酸微生物还原CO_2的(挥发性脂肪酸)(阴极催化剂施加MES)。将合成的纳米晶显示出多孔网络状结构,CF / RGO(158.22米〜2 /克)的高表面积,其比CF的2.24倍更高循环伏安法(CV)和CF / RGO /炭布电化学阻抗谱(EIS)分析(CC)显示的-7.3 A /米〜2高还原电流密度和2.8Ω的低电荷转移电阻。 23.10克/米〜2 / d:在MES-2中的异丁酸和乙酸(铜/ RGO /抄送)以35.37克/米〜2 / d,这比的更高1.53倍MES-1(裸抄送产生)。的库仑效率(77.78%)和总VFA浓度(1941.13±83毫克COD / L)被指出为1.97和1.6倍更高分别MES-2比MES-1,。从CV曲线绘制的塔弗曲线显示出MES-2的交换电流密度值,该值为3.46 A /米〜2,该值是1.19和33.92倍比MES-1和非生物CF的更高/分别RGO /抄送。场发射扫描电子显微镜(FESEM)观察发现增强的棒状细菌已在阴极上提示了微生物的增强的定植CF / RGO催化剂的优异的生物相容性和多尺度孔隙率生长。该门类变形菌(β-变形菌),拟杆菌,厚壁菌和分别为阴极,这可能会在生物电化学CO_2还原成挥发性脂肪酸起了重要作用的主要微生物群落非常丰富。从本研究的结果清楚地表明,CF / RGO /抄送电极可作为具有优良的电化学特性的微生物和杀菌电极之间的导电元件,以使MES的性能。

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