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A Novel Glucose Biosensor Based on Hierarchically Porous Block Copolymer Film

机译:基于多层多孔嵌段共聚物薄膜的新型葡萄糖生物传感器

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摘要

Enzymatic biosensors are widely used in clinical diagnostics, and electrode materials are essential for both the efficient immobilization of enzyme and the fast electron transfer between the active sites of enzyme and electrode surface. Electrode materials with a hierarchically porous structure can not only increase the specific surface area but also promote the electron transfer, facilitating the catalysis reaction. Block copolymer is a good candidate for preparation of film with a hierarchically porous structure due to its unique characteristics of self-assembly and phase separation. In the current work, hierarchically porous block copolymer film containing both micropores and nanopores was prepared by spinodal decomposition induced phase separation. The resultant copolymer film was adopted as the electrode material to immobilize glucose oxidase (GOx) for construction of an enzyme biosensor. Scanning electron microscopy (SEM), contact angle (CA) measurements, and Fourier-transform infrared (FTIR) and electrochemical impendence spectroscopy (EIS) were adopted to investigate the microstructure of the as-developed biosensor. Results demonstrated that the hierarchically porous block copolymer film offered a favorable and biocompatible microenvironment for proteins. These as-prepared glucose biosensors possessed a wide linear range (10–4500 μM), a low detection limit (0.05 μM), quick response (2 s), excellent stability, and selectivity. This work demonstrates that hierarchically porous block copolymer film is a good matrix candidate for the immobilization of the enzyme and provides a potential electrode material to construct novel biosensors with excellent performance.
机译:酶促生物传感器广泛用于临床诊断,电极材料对于酶的有效固定和酶活性位点与电极表面之间的快速电子转移都是必不可少的。具有分层多孔结构的电极材料不仅可以增加比表面积,而且可以促进电子转移,从而促进催化反应。嵌段共聚物由于具有自组装和相分离的独特特性,因此是制备具有分层多孔结构的薄膜的良好选择。在目前的工作中,通过旋节线分解诱导相分离制备了既包含微孔又包含纳米孔的分层多孔嵌段共聚物膜。将所得的共聚物膜用作电极材料以固定葡萄糖氧化酶(GOx)以构建酶生物传感器。采用扫描电子显微镜(SEM),接触角(CA)测量,傅立叶变换红外(FTIR)和电化学阻抗谱(EIS)来研究已开发生物传感器的微观结构。结果表明,分层多孔嵌段共聚物薄膜为蛋白质提供了良好的生物相容性微环境。这些制备的葡萄糖生物传感器具有宽线性范围(10–4500μM),低检测限(0.05μM),快速响应(2 s),出色的稳定性和选择性。这项工作表明分层多孔嵌段共聚物膜是固定化酶的良好基质候选物,并提供了潜在的电极材料来构建性能优异的新型生物传感器。

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