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特殊的银修饰工艺制备的高灵敏度硅纳米线传感器用于快速 NH 检测。

Ultrasensitive Silicon Nanowire Sensor Developed by a Special Ag Modification Process for Rapid NH Detection.

机构信息

School of Microelectronics, Tianjin University , Tianjin 300072, China.

Tianjin Key Laboratory of Imaging and Sensing Microelectronic Technology, Tianjin University , Tianjin 300072, China.

出版信息

ACS Appl Mater Interfaces. 2017 Aug 30;9(34):28766-28773. doi: 10.1021/acsami.7b10584. Epub 2017 Aug 16.

Abstract

Surface functionalization is very effective in enhancing sensing properties of a chemiresistive gas sensor. In this work, we develop a novel and cost-effective process to prepare Ag-modified silicon nanowire (SiNW) sensors and further suggest a resistance effect model to clarify the enhanced sensing mechanism of Ag-modified SiNWs. The SiNWs were formed via metal-assisted chemical etching (MACE), and the Ag nanoparticle (NP) modification was achieved in situ based on the MACE-produced Ag dendrites by involving a crucial anisotropic postetching of TMAH. The TMAH etching induces a loose array of needle-like, rough SiNWs (RNWs) with firm attachment of tiny Ag NPs. Comparative investigations for NH-sensing properties indicate that the RNWs modified by discrete Ag NPs (Ag@RNWs) display an ∼3-fold enhancement in gas response at room temperature compared with pristine SiNWs. Meanwhile, transient response and ultrafast recovery are observed for the Ag@RNW sensor (t ≤ 2 s and t ≤ 9 s to 0.33-10 ppm of NH). The study demonstrates the considerable effect and potential of the Ag modification process developed in this work. A resistance effect model was further suggested to clarify the underlying mechanism of the enhanced response and the response saturation characteristic of the Ag@RNWs. The promotion of TMAH etching-induced microstructure modulation to sensing properties was also demonstrated.

摘要

表面功能化在增强电阻型气敏传感器的传感性能方面非常有效。在这项工作中,我们开发了一种新颖且经济有效的方法来制备 Ag 修饰的硅纳米线(SiNW)传感器,并进一步提出了一个电阻效应模型来阐明 Ag 修饰 SiNW 的增强传感机制。SiNW 是通过金属辅助化学蚀刻(MACE)形成的,Ag 纳米颗粒(NP)的修饰是通过在 TMAH 产生的 Ag 树枝晶原位进行关键的各向异性后蚀刻来实现的。TMAH 蚀刻诱导出具有疏松排列的针状、粗糙 SiNW(RNWs),并且细小的 Ag NPs 牢固地附着在上面。对 NH 传感性能的比较研究表明,与原始 SiNW 相比,离散 Ag NP 修饰的 RNWs(Ag@RNWs)在室温下的气体响应增强了约 3 倍。同时,Ag@RNW 传感器还观察到了瞬态响应和超快恢复(t ≤ 2 s 和 t ≤ 9 s 即可达到 0.33-10 ppm 的 NH)。该研究证明了本工作中开发的 Ag 修饰工艺的显著效果和潜力。进一步提出了一个电阻效应模型来阐明增强响应的潜在机制和 Ag@RNWs 的响应饱和特性。还证明了 TMAH 蚀刻诱导的微结构调制对传感性能的促进作用。

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