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Aqueous dispersions of reduced graphene oxide and multi wall carbon nanotubes for enhanced glucose oxidase bioelectrode performance

机译:还原氧化石墨烯和多壁碳纳米管的水分散体用于增强葡萄糖氧化酶生物电极性能

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摘要

Aqueous dispersions of reduced graphene oxide (rGO) and multi walled carbon nanotubes (MWCNT) were fabricated through a modified chemical reduction method. The significant advantage of the method developed here is the omission of any stabilising compound or organic solvent to obtain stable rGO–MWCNT dispersions. Significantly biological entities, in this case the enzyme glucose oxidase (GOx), can be successfully incorporated into the dispersion. These dispersions were characterised using XPS, SEM, zeta potential and particle size measurements which showed that the dispersion stability is not sacrificed with the addition of GOx, and significantly, the electrical properties of the rGO and MWCNTs are maintained. In this study, rGO acts as an effective dispersing agent for MWCNTs and does not affect the solubility or electroactivity of the GOx. Bioelectrodes fabricated from these rGO–MWCNT–GOx dispersions were characterised electrochemically to test their feasibility in facilitating direct electron transfer (DET) from the redox centre of the enzyme to the electrode. The DET results showed that the specific catalytic current generated at an optimised rGO–MWCNT–GOx electrode was 72 μA/μg GOx, which is 144 times more efficient than other literature values for similar systems. The remarkable specific catalytic current can be attributed to the use of purified enzyme, the efficiency of charge transfer within the rGO–MWCNT composite and the ability of the electrode to facilitate direct electron transfer.
机译:通过改进的化学还原方法制备了氧化石墨烯(rGO)和多壁碳纳米管(MWCNT)的水分散体。这里开发的方法的显着优点是省去了任何稳定化合物或有机溶剂,以获得稳定的rGO-MWCNT分散体。重要的生物实体,在这种情况下为酶葡萄糖氧化酶(GOx),可以成功地掺入分散液中。使用XPS,SEM,ζ电位和粒度测量对这些分散体进行表征,结果表明,加入GOx不会牺牲分散体的稳定性,并且显着地保持了rGO和MWCNT的电性能。在这项研究中,rGO可作为MWCNT的有效分散剂,并且不会影响GOx的溶解度或电活性。用这些rGO-MWCNT-GOx分散体制备的生物电极经过电化学表征,以测试其在促进从酶的氧化还原中心到电极的直接电子转移(DET)的可行性。 DET结果表明,在优化的rGO-MWCNT-GOx电极上产生的比催化电流为72μA/μgGOx,其效率是同类系统其他文献报道值的144倍。出色的比催化电流可归因于纯化酶的使用,rGO-MWCNT复合物中电荷转移的效率以及电极促进直接电子转移的能力。

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