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基于氧化锌纳米棒的形状可控纳米结构金的光化学合成作为光催化可再生传感器

Photochemical Synthesis of Shape-Controlled Nanostructured Gold on Zinc Oxide Nanorods as Photocatalytically Renewable Sensors.

作者信息

Xu Jia-Quan, Duo Huan-Huan, Zhang Yu-Ge, Zhang Xin-Wei, Fang Wei, Liu Yan-Ling, Shen Ai-Guo, Hu Ji-Ming, Huang Wei-Hua

机构信息

Key Laboratory of Analytical Chemistry for Biology and Medicine, Ministry of Education, College of Chemistry and Molecular Sciences, Wuhan University , Wuhan 430072, China.

出版信息

Anal Chem. 2016 Apr 5;88(7):3789-95. doi: 10.1021/acs.analchem.5b04810. Epub 2016 Mar 15.

Abstract

Biosensors always suffer from passivation that prevents their reutilization. To address this issue, photocatalytically renewable sensors composed of semiconductor photocatalysts and sensing materials have emerged recently. In this work, we developed a robust and versatile method to construct different kinds of renewable biosensors consisting of ZnO nanorods and nanostructured Au. Via a facile and efficient photochemical reduction, various nanostructured Au was obtained successfully on ZnO nanorods. As-prepared sensors concurrently possess excellent sensing capability and desirable photocatalytic cleaning performance. Experimental results demonstrate that dendritic Au/ZnO composite has the strongest surface-enhanced Raman scattering (SERS) enhancement, and dense Au nanoparticles (NPs)/ZnO composite has the highest electrochemical activity, which was successfully used for electrochemical detection of NO release from cells. Furthermore, both of the SERS and electrochemical sensors can be regenerated efficiently for renewable applications via photodegrading adsorbed probe molecules and biomolecules. Our strategy provides an efficient and versatile method to construct various kinds of highly sensitive renewable sensors and might expand the application of the photocatalytically renewable sensor in the biosensing area.

摘要

生物传感器总是会受到钝化作用的影响,从而阻碍其重复使用。为了解决这个问题,由半导体光催化剂和传感材料组成的光催化可再生传感器最近应运而生。在这项工作中,我们开发了一种强大且通用的方法来构建由氧化锌纳米棒和纳米结构金组成的不同类型的可再生生物传感器。通过简便高效的光化学还原,在氧化锌纳米棒上成功获得了各种纳米结构的金。所制备的传感器同时具备出色的传感能力和理想的光催化清洁性能。实验结果表明,树枝状金/氧化锌复合材料具有最强的表面增强拉曼散射(SERS)增强效果,而致密的金纳米颗粒(NPs)/氧化锌复合材料具有最高的电化学活性,其已成功用于细胞释放一氧化氮的电化学检测。此外,通过光降解吸附的探针分子和生物分子,SERS传感器和电化学传感器都可以高效再生以用于可再生应用。我们的策略提供了一种高效且通用的方法来构建各种高灵敏度的可再生传感器,并可能扩大光催化可再生传感器在生物传感领域的应用。

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