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在平面微波谐振器中使用MoO纳米片功能化的激光诱导石墨烯对乙醇气体进行灵敏度增强检测。

Sensitivity-enhanced detection of ethanol gas using MoO nanoflake-functionalized laser-induced graphene in a planar microwave resonator.

作者信息

Ali Luqman, Adhikari Kishor Kumar, Wei Jie, Yi Yang, Wang Gaofeng, Wang Cong

机构信息

The Ministry of Education Engineering Research Center of Smart Microsensors and Microsystems, School of Electronic Information, Hangzhou Dianzi University, Hangzhou, 310018, China.

Artificial Intelligence Research Laboratory, National College of Engineering, Tribhuvan University, Lalitpur, 44700, Nepal.

出版信息

Mikrochim Acta. 2025 Jul 24;192(8):516. doi: 10.1007/s00604-025-07372-x.

Abstract

Recent advancements in sensor technology have heightened the demand for more sensitive gas detection methods, crucial for improving environmental monitoring and industrial safety applications. This study investigates the potential of a hybrid of laser-induced graphene (LIG) and MoO nanoflakes via a planar microwave resonator for detecting ethanol gas with high sensitivity. To implement the proposed sensor, a rectangular-shaped graphene layer was patterned on a polyimide substrate using a computer-controlled CO laser and functionalized with MoO nanoflakes. The LIG/MoO hybrid was attached to the high-field distribution zone of a planar microwave resonator, which consisted of electromagnetically coupled split-ring resonators (SRRs), thereby improving the detection sensitivity for ethanol gas. As a proof of concept, a prototype of the microwave resonator sensor interfaced with a LIG/MoO hybrid was developed and tested for its ability to detect different volatile organic compounds (VOCs) and monitor a wide range of ethanol concentrations. Integrating the resonator sensor with a LIG/MoO hybrid achieved rapid (~ 45 s), linear, and sensitive (193 kHz/ppm) detection and characterization of ethanol gas (25 to 800 ppm) using shifts in its baseline resonant frequency of 4.067 GHz. Additionally, functionalizing the LIG interface with MoO nanoflakes resulted in a gas sensing response that was boosted by a factor of up to 1.825 times the sensitivity compared to LIG and MoO as gas-sensitive interfaces. The achieved results demonstrate the potential of LIG/MO-interfaced microwave resonator sensor in detecting and characterizing ethanol gas for environmental quality monitoring.

摘要

传感器技术的最新进展增加了对更灵敏气体检测方法的需求,这对于改善环境监测和工业安全应用至关重要。本研究通过平面微波谐振器研究了激光诱导石墨烯(LIG)与MoO纳米薄片的混合物用于高灵敏度检测乙醇气体的潜力。为了实现所提出的传感器,使用计算机控制的CO激光在聚酰亚胺基板上对矩形石墨烯层进行图案化,并使用MoO纳米薄片进行功能化。LIG/MoO混合物附着在由电磁耦合开口环谐振器(SRR)组成的平面微波谐振器的高场分布区域,从而提高了对乙醇气体的检测灵敏度。作为概念验证,开发了一种与LIG/MoO混合物接口的微波谐振器传感器原型,并测试了其检测不同挥发性有机化合物(VOC)和监测宽范围乙醇浓度的能力。将谐振器传感器与LIG/MoO混合物集成,利用其4.067 GHz基线谐振频率的偏移,实现了对乙醇气体(25至800 ppm)的快速(约45秒)、线性和灵敏(193 kHz/ppm)检测与表征。此外,用MoO纳米薄片对LIG界面进行功能化导致气体传感响应增强,与作为气敏界面的LIG和MoO相比,灵敏度提高了1.825倍。所取得的结果证明了LIG/MO接口的微波谐振器传感器在检测和表征乙醇气体以进行环境质量监测方面的潜力。

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