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Direct Enzymatic Glucose/O2 Biofuel Cell based on Poly-Thiophene Carboxylic Acid alongside Gold Nanostructures Substrates Derived through Bipolar Electrochemistry

机译:基于聚噻吩羧酸和双极性电化学衍生的金纳米结构基质的直接酶促葡萄糖/ O2生物燃料电池

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摘要

Bipolar electrochemistry (BPE) has been lately explored as a simple, reliable and novel electrochemical technique for the adjustment of various conductive substrates. Herein, BPE is performed to derive both of cathode and anode electrodes for the development of mediatorless/membraneless biofuel cell (BFC). On one hand, a preferable substrate for immobilization of bilirubin oxidase enzyme is prepared based on the electropolymerization of thiophene-3-carboxcylic acid (TCA) on an Au microfilm as a bipolar electrode. The resulted biocathode as novel bioelectrocatalyst offers a high electrocatalytic activity toward direct oxygen reduction reaction (ORR) with onset potential and current density of 0.55 V (vs. Ag/AgCl) and 867 μA cm−2, respectively. On the other hand, another analogous Au bipolar electrode is electroplated through BPE to derive Au nanostructures (AuNSs). This modified Au electrode is utilized as an anodic platform for immobilization of flavin adenine dinucleotide-dependent glucose dehydrogenase (FAD-GDH) enzyme aimed at electrocatalytic glucose oxidation. The prepared bioanode displays a current density of 2.7 mA cm−2 with onset potential of −0.03 V. Finally, the proposed bioanode and biocacthode in an assembled membraneless glucose/O2 BFC offers a power output of 146 μW cm−2 with open circuit voltage of 0.54 V. This novel BPE method provides disposable electrochemical platforms for design of novel sensors, biosensors or other devices.
机译:最近,双极电化学(BPE)被作为一种简单,可靠和新颖的电化学技术用于调节各种导电基材。在此,进行BPE以衍生出阴极和阳极电极,以开发无介体/无膜生物燃料电池(BFC)。一方面,基于噻吩-3-羧酸(TCA)在作为双极电极的Au微膜上的电聚合,制备了用于固定胆红素氧化酶的优选底物。所得生物阴极作为新型生物电催化剂,对直接氧还原反应(ORR)具有很高的电催化活性,起始电势和电流密度分别为0.55 V(vs. Ag / AgCl)和867μAcm −2 。另一方面,另一个类似的Au双极电极通过BPE电镀,以得到Au纳米结构(AuNSs)。该修饰的Au电极用作固定化黄素腺嘌呤二核苷酸依赖性葡萄糖脱氢酶(FAD-GDH)酶的阳极平台,旨在进行电催化葡萄糖氧化。制备的生物阳极显示电流密度为2.7 mA cm -2 ,起始电位为-0.03 V.最后,在组装的无膜葡萄糖/ O2 BFC中建议的生物阳极和生物阴极可提供146μW的功率输出cm −2 ,开路电压为0.54 V.这种新颖的BPE方法为设计新型传感器,生物传感器或其他设备提供了一次性电化学平台。

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