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Multiple-Stimuli Responsive Bioelectrocatalysis Based on Reduced Graphene Oxide/Poly(N-isopropylacrylamide) Composite Films and Its Application in the Fabrication of Logic Gates

机译:氧化石墨烯/聚(N-异丙基丙烯酰胺)复合膜的多刺激响应生物电催化及其在逻辑门制备中的应用

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In the present work, reduced graphene oxide (rGO)/poly(N-isopropylacrylamide) (PNIPAA) composite films were electrodeposited onto the surface of Au electrodes in a fast and one-step manner from an aqueous mixture of a graphene oxide (GO) dispersion and N-isopropylacrylamide (NIPAA) monomer solutions. Reflection-absorption infrared (IR) and Raman spectroscopies were employed to characterize the successful construction of the rGO/PNIPAA composite films. The rGO/PNIPAA composite films exhibited reversible potential-, pH-, temperature-, and sulfate-sensitive cyclic voltammetric (CV) on-off behavior to the electroactive probe ferrocenedicarboxylic acid (Fc(COOH)(2)). For instance, after the composite films were treated at -0.7 V for 7 min, the CV responses of Fc(COOH)(2) at the rGO/PNIPAA electrodes were quite large at pH 8.0, exhibiting the on state. However, after the films were treated at 0 V for 30 min, the CV peak currents became much smaller, demonstrating the off state. The mechanism of the multiple-stimuli switchable behaviors for the system was investigated not only by electrochemical methods but also by scanning electron microscopy and X-ray photoelectron spectroscopy. The potential-responsive behavior for this system was mainly attributed to the transformation between rGO and GO in the films at different potentials. The film system was further used to realize multiple-stimuli responsive bioelectrocatalysis of glucose catalyzed by the enzyme of glucose oxidase and mediated by the electroactive probe of Fc(COOH)(2) in solution. On the basis of this, a four-input enabled OR (EnOR) logic gate network was established.
机译:在本工作中,将还原的氧化石墨烯(rGO)/聚(N-异丙基丙烯酰胺)(PNIPAA)复合膜从氧化石墨烯(GO)的水性混合物中快速而一步地电沉积到Au电极的表面上分散液和N-异丙基丙烯酰胺(NIPAA)单体溶液。反射吸收红外(IR)和拉曼光谱学被用来表征rGO / PNIPAA复合膜的成功构建。 rGO / PNIPAA复合膜对电活性探针二茂铁二羧酸(Fc(COOH)(2))表现出可逆的电位,pH,温度和硫酸盐敏感的循环伏安(CV)开关行为。例如,将复合膜在-0.7 V下处理7分钟后,rGO / PNIPAA电极上Fc(COOH)(2)的CV响应在pH 8.0时非常大,呈现出导通状态。但是,将膜在0 V下处理30分钟后,CV峰值电流变得小得多,表明处于截止状态。不仅通过电化学方法,而且通过扫描电子显微镜和X射线光电子能谱研究了系统的多刺激可切换行为的机理。该系统的电位响应行为主要归因于不同电位的电影中rGO和GO之间的转换。该膜系统还用于实现葡萄糖氧化酶的催化和溶液中Fc(COOH)(2)的电活性探针介导的葡萄糖的多刺激响应生物电催化。在此基础上,建立了四输入使能或(EnOR)逻辑门网络。

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