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通过集成到3D火焰合成的n型ZnO中的p型多壁碳纳米管/聚苯胺纳米异质结增强气态丙酮检测

Boosting Gaseous Acetone Detection by Nanoheterojunctions of p-Type MWCNTs/PANI Integrated into 3D Flame-Synthesized n-Type ZnO.

作者信息

Pargoletti E, Vertova A, Tricoli A, Starvaggi A, John A T, Minelli S, Longhi M, Cappelletti G

机构信息

Dipartimento di Chimica, Università degli Studi di Milano, Golgi 19, 20133 Milan, Italy.

Consorzio Interuniversitario Nazionale per la Scienza e Tecnologia dei Materiali (INSTM), Giusti 9, 50121 Florence, Italy.

出版信息

ACS Sens. 2025 Jan 24;10(1):407-416. doi: 10.1021/acssensors.4c02708. Epub 2025 Jan 5.

DOI:10.1021/acssensors.4c02708
PMID:39757722
Abstract

Accurate methods for detecting volatile organic compounds (VOCs) are essential for noninvasive disease diagnosis, with breath analysis providing a simpler, user-friendly alternative to traditional diagnostic tools. However, challenges remain in low-temperature VOC solid-state sensors, especially concerning their selectivity and functionality at room temperature. Herein, we present key insights into optimizing multiwalled carbon nanotubes (MWCNTs)/polyaniline (PANI) and ZnO nanocomposites for efficient, light-free selective acetone sensing. We showcased novel nanocomposites prepared by integrating p-type MWCNTs/PANI into a porous 3D network of n-type ZnO nanoparticles, synthesized via flame spray pyrolysis, and varying the weight ratios between ZnO and MWCNTs/PANI (namely 1:1, 8:1, 32:1, 64:1). The 32:1 nanocomposite exhibited superior acetone selectivity over toluene and ethanol, resulting in promise even at room temperature. As such, a potential sensing mechanism was proposed, which involves nanoheterojunction formation between p-type MWCNTs/PANI and n-type ZnO, creating an accumulation layer that enhances the gas response. Moreover, the incorporation of MWCNTs improved the overall conductivity and carrier mobility. Hence, we believe that this work offers valuable insights for optimizing MWCNTs/PANI and ZnO nanocomposites for efficient, low-temperature, light-free gas sensors.

摘要

准确检测挥发性有机化合物(VOCs)的方法对于非侵入性疾病诊断至关重要,呼吸分析为传统诊断工具提供了一种更简单、用户友好的替代方案。然而,低温VOC固态传感器仍面临挑战,尤其是在室温下它们的选择性和功能方面。在此,我们展示了优化多壁碳纳米管(MWCNTs)/聚苯胺(PANI)和ZnO纳米复合材料以实现高效、无需光照的丙酮选择性传感的关键见解。我们展示了通过将p型MWCNTs/PANI整合到通过火焰喷雾热解合成的n型ZnO纳米颗粒的多孔3D网络中,并改变ZnO与MWCNTs/PANI之间的重量比(即1:1、8:1、32:1、64:1)制备的新型纳米复合材料。32:1的纳米复合材料对甲苯和乙醇表现出优异的丙酮选择性,甚至在室温下也有应用前景。因此,提出了一种潜在的传感机制,其中涉及p型MWCNTs/PANI与n型ZnO之间形成纳米异质结,形成一个积累层,增强气体响应。此外,MWCNTs的加入提高了整体导电性和载流子迁移率。因此,我们相信这项工作为优化MWCNTs/PANI和ZnO纳米复合材料以用于高效、低温、无需光照的气体传感器提供了有价值的见解。

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