首页> 外文期刊>ACS Omega >Chitosan-Covered Pd@Pt Core–Shell Nanocubes for Direct Electron Transfer in Electrochemical Enzymatic Glucose Biosensor
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Chitosan-Covered Pd@Pt Core–Shell Nanocubes for Direct Electron Transfer in Electrochemical Enzymatic Glucose Biosensor

机译:壳聚糖包覆的Pd @ Pt核壳纳米立方体可在电化学酶生物传感器中直接电子转移。

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Development of biosensors with high sensitivity, high spatial resolution, and low cost has received significant attention for their applications in medical diagnosis, diabetes management, and environment-monitoring. However, achieving a direct electrical contact between redox enzymes and electrode surfaces and enhancing the operational stability still remain as challenges. Inorganic metal nanocrystals (NCs) with precisely controlled shape and surface structure engineered with an appropriate organic coating can help overcome the challenges associated with their stability and aggregation for practical biosensor applications. Herein, we describe a facile, room-temperature, seed-mediated solution-phase route to synthesize monodisperse Pd@Pt core–shell nanocubes with subnanometer-thick platinum (Pt) shells. The enzyme electrode consisting of Pd@Pt core–shell NCs was first covered with a chitosan (CS) polymer and then glucose oxidase (GOx) immobilized by a covalent linkage to the CS. This polymer permits covalent immobilization through active amino (?NH) side groups to improve the stability and preserve the biocatalytic functions while the Pd@Pt NCs facilitate enhanced direct electron transfer (DET) in the biosensor. The resultant biosensor promotes DET and exhibits excellent performance for the detection of glucose, with a sensitivity of 6.82 μA cm~(–2) mM~(–1) and a wide linear range of 1–6 mM. Our results demonstrate that sensitive electrochemical glucose detection based on Pd@Pt core–shell NCs provides remarkable opportunities for designing low-cost and sensitive biosensors.
机译:具有高灵敏度,高空间分辨率和低成本的生物传感器的开发由于其在医学诊断,糖尿病管理和环境监测中的应用而受到了广泛的关注。然而,实现氧化还原酶与电极表面之间的直接电接触并增强操作稳定性仍然是挑战。通过适当的有机涂层设计的具有精确控制的形状和表面结构的无机金属纳米晶体(NC)可以帮助克服其在实际生物传感器应用中的稳定性和聚集性带来的挑战。在这里,我们描述了一种简便的,室温下,种子介导的溶液相途径,可以合成具有亚纳米厚的铂(Pt)壳的单分散Pd @ Pt核壳纳米立方体。由Pd @ Pt核-壳NC组成的酶电极首先被壳聚糖(CS)聚合物覆盖,然后被与CS共价键固定的葡萄糖氧化酶(GOx)覆盖。这种聚合物允许通过活性氨基(?NH)侧基进行共价固定,从而提高稳定性并保留生物催化功能,而Pd @ Pt NC则促进了生物传感器中增强的直接电子转移(DET)。所得的生物传感器促进DET并显示出出色的葡萄糖检测性能,灵敏度为6.82μAcm〜(–2)mM〜(–1),线性范围为1-6 mM。我们的结果表明,基于Pd @ Pt核壳型NC的灵敏的电化学葡萄糖检测为设计低成本和灵敏的生物传感器提供了绝佳的机会。

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