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一种用于醛类的超灵敏等离子体纳米传感器。

An Ultrasensitive Plasmonic Nanosensor for Aldehydes.

作者信息

Li Meng, Shi Lei, Xie Tao, Jing Chao, Xiu Guangli, Long Yi-Tao

机构信息

Shanghai Qingpu Water Authority , 35 Xidayingangyi Road, Shanghai, 201799, P. R. China.

Physik-Department E20, Technische Universität München , James-Franck-Strasse 1 D-85748 Garching, Germany.

出版信息

ACS Sens. 2017 Feb 24;2(2):263-267. doi: 10.1021/acssensors.6b00769. Epub 2017 Jan 26.

Abstract

Glucose is the most common but important aldehyde, and it is necessary to create biosensors with high sensitivity and anti-interference to detect it. Under the existence of silver ions and aldehyde compounds, single gold nanoparticles and freshly formed silver atoms could respectively act as core and shell, which finally form a core-shell structure. By observing the reaction between glucose and Tollens' reagent, metallic silver was found to be reduced on the surface of gold nanoparticles and formed Au@Ag nanoparticles that lead to a direct wavelength shift. Based on this principle and combined with in situ plasmon resonance scattering spectra, a plasmonic nanosensor was successfully applied in identifying aldehyde compounds with excellent sensitivity and specificity. This ultrasensitive sensor was successfully further utilized to detect blood glucose in mice serum samples, exhibiting good anti-interference ability and great promise for future clinical application.

摘要

葡萄糖是最常见但重要的醛类物质,因此有必要制造出具有高灵敏度和抗干扰能力的生物传感器来检测它。在银离子和醛类化合物存在的情况下,单个金纳米颗粒和新形成的银原子可分别作为核与壳,最终形成核壳结构。通过观察葡萄糖与托伦试剂之间的反应,发现金属银在金纳米颗粒表面被还原,形成了导致直接波长偏移的金@银纳米颗粒。基于这一原理并结合原位等离子体共振散射光谱,一种等离子体纳米传感器成功地应用于醛类化合物的识别,具有优异的灵敏度和特异性。这种超灵敏传感器进一步成功地用于检测小鼠血清样本中的血糖,表现出良好的抗干扰能力,对未来临床应用具有巨大潜力。

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