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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Electrodeposition of carbon nanotubes-chitosan-glucose oxidase biosensing composite films triggered by reduction of p-benzoquinone or H2O2
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Electrodeposition of carbon nanotubes-chitosan-glucose oxidase biosensing composite films triggered by reduction of p-benzoquinone or H2O2

机译:对苯醌或H2O2还原引发的碳纳米管-壳聚糖-葡萄糖氧化酶生物传感复合膜的电沉积

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We report here on the electroreduction of p-benzoquinone (BQ) or H2O2 as a new trigger for simple, fast, uniform, and controllable electrodeposition of chitosan (CS) hydrogels and biosensing nanocomposite films of CS, multiwalled carbon nanotubes (MWCNTs), and glucose oxidase (GOD). The multiparameter electrochemical quartz crystal microbalance (EQCM) based on crystal electroacoustic impedance analysis was used to dynamically monitor the deposition processes. When the EQCM Au electrode was immersed in a weakly acidic solution (here pH 5.1 acetic buffer) containing BQ (or H2O2) and CS, the proton consumption during BQ (or H2O2) electroreduction increased the local solution pH near the electrode surface and led to the deposition of CS hydrogel on the electrode surface at local pH near and above the pK(a) value of CS. The concentration of BQ (or H2O2) required for CS electrodeposition was theoretically evaluated based on an electrogenerated base-to-acid titration model and supported by experiments. Co-deposition of GOD and MWCNTs with the CS hydrogel was achieved, and the resulting MWCNTs-CS-GOD nanocomposite films were demonstrated for glucose biosensing. The MWCNTs-CS-GOD enzyme electrode prepared by BQ reduction exhibited a current sensitivity of 6.7 mu A mM(-1) cm(-2) to glucose, and the linear range for glucose detection at 0.7 V vs SCE was from 5 mu M to 8 mM, with a detection limit of 2 mu M and a Michaelis-Menten constant of 6.8 mM. The BQ-electroreduction protocol exhibited the best sensor performance, as compared with H2O2-reduction and previously reported water-reduction values. The present protocol via electroreduction of a deliberately added oxidant that is accompanied
机译:我们在这里报告对苯并醌(BQ)或H2O2的电还原作为壳聚糖(CS)水凝胶和CS,多壁碳纳米管(MWCNT)和生物传感纳米复合膜的简单,快速,均匀和可控电沉积的新触发因素葡萄糖氧化酶(GOD)。基于晶体电声阻抗分析的多参数电化学石英晶体微量天平(EQCM)用于动态监测沉积过程。将EQCM Au电极浸入含有BQ(或H2O2)和CS的弱酸性溶液(此处为pH 5.1乙酸缓冲液)中时,BQ(或H2O2)电还原过程中的质子消耗会增加电极表面附近的局部溶液pH并导致CS水凝胶在CS的pK(a)值附近和之上的局部pH值在电极表面上的沉积。理论上基于电生成的碱酸滴定模型评估了CS电沉积所需的BQ(或H2O2)浓度,并得到了实验的支持。实现了GOD和MWCNT与CS水凝胶的共沉积,并证明了所得的MWCNTs-CS-GOD纳米复合膜可用于葡萄糖生物传感。通过BQ还原制备的MWCNTs-CS-GOD酶电极对葡萄糖的电流灵敏度为6.7μAmM(-1)cm(-2),在0.7 V vs SCE下检测葡萄糖的线性范围为5μM至8 mM,检测限为2μM,Michaelis-Menten常数为6.8 mM。与减少H2O2和先前报告的减水值相比,BQ-电减少方案表现出最佳的传感器性能。通过电还原故意添加的氧化剂并伴随本协议

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