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Bio-electrocatalysis of Acetobacter aceti through direct electron transfer using a template deposited nickel anode

机译:使用模板沉积的镍阳极通过直接电子转移对乙杆菌的生物电催化

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摘要

We have developed a novel anode for microbial fuel cells (MFC) which exhibits effective direct electron transfer with Acetobacter aceti. A high surface area nickel electrode was obtained using a simple process of template electrodeposition and it significantly improved the bioelectrocatalytic activity of Acetobacter aceti towards the oxidation of ethanol and glucose. Electrodeposition of Ni on carbon paper was carried out in the absence and presence of a soft template which served as the substrate for direct electron transfer. The soft template consists of a two component mixture of Triton X-100 and water. The structural and morphological characterizations of these modified electrodes were carried out using scanning electron microscopy (SEM). The redox properties of the biofilm formed on Ni coated carbon electrodes were investigated using cyclic voltammetry (CV) and chronoamperometry (CA). The formation of redox peaks during CV studies suggests the presence of a membrane bound redox protein linked to pyrroloquinoline quinone (PQQ) within these microbes on the modified electrodes. Investigation of the scan rate dependence reveals that the proteins are surface confined and anchored. From CA studies, we found that the oxidation current density corresponding to glucose and ethanol was more for the template deposited nickel (TNiCP) when compared to the one without the template. The oxidation current density of ethanol was found to be higher (68 μA cm~(-2) i.e., 680 mA m~(-2)) in comparison to glucose (42 μA cm~(-2) i.e., 420 mA m~(-2)). For comparison, we have also carried out all these studies using a bare carbon paper (CP). Our results clearly demonstrate the direct electron transfer between Acetobacter aceti and high surface area nickel electrodes through the membrane bound redox enzyme which presumably contributes to the higher oxidation current density of ethanol and glucose and could be used as an alternative anode material for MFC applications.
机译:我们已经开发了一种新型的微生物燃料电池阳极(MFC),该阳极用乙酰杆菌表现出有效的直接电子转移。使用模板电沉积的简单过程获得了高表面积镍电极,并显着改善了乙酰杆菌乙酰乙醇对乙醇和葡萄糖的氧化的生物电催化活性。在不存在和存在的软模板的情况下,进行了Ni在碳纸上的电沉积,该模板用作直接电子转移的基板。软模板由Triton X-100和水的两个组成混合物组成。使用扫描电子显微镜(SEM)进行了这些修饰电极的结构和形态特征。使用循环伏安法(CV)和计时度测定法(CA)研究了在NI涂层碳电极上形成的生物膜的氧化还原性能。在CV研究中,氧化还原峰的形成表明,在这些微生物中,存在与吡咯喹啉醌(PQQ)相关的膜结合氧化还原蛋白。对扫描速率依赖性的研究表明,蛋白质是表面限制和锚定的。从CA研究中,我们发现与没有模板的模板相比,与模板沉积的镍(TNICP)相对应的氧化电流密度更多。发现乙醇的氧化电流密度与葡萄糖(42μACM〜(-2)相比,680μACM〜(-2),即680 mA m〜(-2))。 (-2))。为了进行比较,我们还使用裸碳纸(CP)进行了所有这些研究。我们的结果清楚地表明,乙酸乙酸酯和高表面积镍电极之间的直接电子转移通过膜结合的氧化还原酶,这可能有助于乙醇和葡萄糖的氧化电流密度较高,并且可以用作MFC应用的替代阳极材料。

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