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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Electrochemical Characterization of Layer-By-Layer Assembled Ferrocene-Modified Linear Poly(ethylenimine)/Enzyme Bioanodes for Glucose Sensor and Biofuel Cell Applications
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Electrochemical Characterization of Layer-By-Layer Assembled Ferrocene-Modified Linear Poly(ethylenimine)/Enzyme Bioanodes for Glucose Sensor and Biofuel Cell Applications

机译:多层组装的二茂铁修饰的线性聚乙烯亚胺/酶生物阳极的电化学表征,用于葡萄糖传感器和生物燃料电池应用

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摘要

Ferrocenylhexyl- and ferrocenylpropyl-modified linear poly(ethylenimine) (Fc-C-6-LPEI, Fc-C-3-LPEI) were used with periodate-modified glucose oxidase (p-GOX) in the layer-by-layer assembly of enzymatic bioanodes on gold. Fc-C-6-LPEI/p-GOX and Fc-C-3-LPEI/p-GOX films of 16 bilayers were capable of generating up to 381 +/- 3 and 1417 +/- 63 mu A cm(-2), respectively, in response to glucose. These responses are greater than those of analogous bioanodes fabricated using conventional cross-linking techniques and are extremely high for planar, low surface area, single-enzyme electrodes. (Fc-C-3-LPEI/p-GOX)(8) films generated 86 +/- 3 mu W cm(-2) at pH 7.0 and 149 +/- 7 mu W cm(-2) at pH 5.0, when poised against an air breathing platinum cathode in a compartment-less biofuel cell. An increase in power output with decreasing pH was shown to be a result of increases in the platinum cathode performance, indicating it is the rate-limiting electrode in the biofuel cells. The effect of fabrication wash time on the buildup of material at the electrode's surface was probed using cyclic voltammetry (CV) and constant potential amperometry. The use of electrochemical techniques as a diagnostic tool for studying the material deposition process is discussed. CV peak separation (Delta E), surface coverage of the electroactive ferrocene (Gamma(FC)), and amperometric sensitivity of the enzyme to glucose (J(max)), studied as a function of numbers of bilayers, showed that physisorption of materials onto the surface results from initial patchy deposition, rather than in distinctly uniform layers.
机译:二茂铁基己基和二茂铁基丙基改性的线性聚亚乙基亚胺(Fc-C-6-LPEI,Fc-C-3-LPEI)与高碘酸盐改性的葡萄糖氧化酶(p-GOX)一起使用黄金上的酶促生物阳极。 16层双层的Fc-C-6-LPEI / p-GOX和Fc-C-3-LPEI / p-GOX膜能够产生最多381 +/- 3和1417 +/- 63μAcm(-2 )分别响应葡萄糖。这些响应大于使用常规交联技术制造的类似生物阳极的响应,并且对于平面,低表面积的单酶电极而言非常高。 (Fc-C-3-LPEI / p-GOX)(8)膜在pH 7.0时产生86 +/- 3μW cm(-2),在pH 5.0时产生149 +/- 7μW cm(-2),当将其放在无隔舱的生物燃料电池中的可呼吸空气的铂阴极上时。已显示,随着pH值的降低,输出功率的增加是铂阴极性能提高的结果,表明它是生物燃料电池中的限速电极。使用循环伏安法(CV)和恒电位安培法研究了制造洗涤时间对电极表面材料堆积的影响。讨论了使用电化学技术作为研究材料沉积过程的诊断工具。作为双层数的函数研究的CV峰分离度(Delta E),电活性二茂铁的表面覆盖率(Gamma(FC))和酶对葡萄糖的安培灵敏度(J(max))显示了材料的物理吸附表面上的斑点起因于最初的斑片状沉积,而不是明显均匀的层。

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