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通过静电纺丝和气相硫化法简便合成用于生物传感器应用的核壳结构ZnO/ZnS纳米纤维。

Facile synthesis of core/shell ZnO/ZnS nanofibers by electrospinning and gas-phase sulfidation for biosensor applications.

作者信息

Baranowska-Korczyc Anna, Sobczak Kamil, Dłużewski Piotr, Reszka Anna, Kowalski Bogdan J, Kłopotowski Łukasz, Elbaum Danek, Fronc Krzysztof

机构信息

Institute of Physics, Polish Academy of Sciences, al. Lotników 32/46, PL-02668 Warsaw, Poland.

出版信息

Phys Chem Chem Phys. 2015 Oct 7;17(37):24029-37. doi: 10.1039/c5cp02278a. Epub 2015 Aug 27.

Abstract

This study describes a new method of passivating ZnO nanofiber-based devices with a ZnS layer. This one-step process was carried out in H2S gas at room temperature, and resulted in the formation of core/shell ZnO/ZnS nanofibers. This study presents the structural, optical and electrical properties of ZnO/ZnS nanofibers formed by a 2 nm ZnS sphalerite crystal shell covering a 5 nm ZnO wurtzite crystal core. The passivation process prevented free carriers from capture by oxygen molecules and significantly reduced the impact of O2 on nanostructure conductivity. The conductivity of the nanofibers was increased by three orders of magnitude after the sulfidation, the photoresponse time was reduced from 1500 s to 30 s, and the cathodoluminescence intensity increased with the sulfidation time thanks to the removal of ZnO surface defects by passivation. The ZnO/ZnS nanofibers were stable in water for over 30 days, and in phosphate buffers of acidic, neutral and alkaline pH for over 3 days. The by-products of the passivation process did not affect the conductivity of the devices. The potential of ZnO/ZnS nanofibers for protein biosensing is demonstrated using biotin and streptavidin as a model system. The presented ZnS shell preparation method can facilitate the construction of future sensors and protects the ZnO surface from dissolving in a biological environment.

摘要

本研究描述了一种用硫化锌层钝化基于氧化锌纳米纤维的器件的新方法。这一步骤在室温下于硫化氢气体中进行,结果形成了核/壳结构的氧化锌/硫化锌纳米纤维。本研究展示了由覆盖5纳米纤锌矿晶体核的2纳米闪锌矿晶体壳的硫化锌形成的氧化锌/硫化锌纳米纤维的结构、光学和电学性质。钝化过程防止了自由载流子被氧分子捕获,并显著降低了氧气对纳米结构导电性的影响。硫化后纳米纤维的电导率提高了三个数量级,光响应时间从1500秒缩短到30秒,并且由于通过钝化去除了氧化锌表面缺陷,阴极发光强度随硫化时间增加。氧化锌/硫化锌纳米纤维在水中稳定超过30天,在酸性、中性和碱性pH值的磷酸盐缓冲液中稳定超过3天。钝化过程的副产物不影响器件的导电性。以生物素和链霉亲和素作为模型系统,展示了氧化锌/硫化锌纳米纤维用于蛋白质生物传感的潜力。所提出的硫化锌壳制备方法可促进未来传感器的构建,并保护氧化锌表面在生物环境中不溶解。

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