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首页> 外文期刊>ACS applied materials & interfaces >Intense Pulsed Light-Treated Near-Field Electrospun Nanofiber on a Quartz Tuning Fork for Multimodal Gas Sensors
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Intense Pulsed Light-Treated Near-Field Electrospun Nanofiber on a Quartz Tuning Fork for Multimodal Gas Sensors

机译:用于多式联路气体传感器的石英调谐叉上的强烈脉冲光处理近场电纺纳米纤维

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摘要

Accurate and portable gas sensors are required for environmental monitoring, locating leakages, and detecting trace chemical vapors or gases. Although many sensors have been developed, few can rapidly and selectively detect parts per million (ppm) concentration changes. In this work, we fabricate multimodal gas sensors by depositing a single nanocomposite fiber between the prongs of a quartz tuning fork (QTF). The resulting sensors are portable and integrate multimodal approaches by applying both chemo-mechanical sensing for sensitivity and electrochemical sensing for selectivity. Near-field electrospinning (NFES) produces a flexible and semiconductive nanocomposite fiber with similar to 500 nm diameter that can be integrated into electronic systems as environmental gas sensors. Intense pulsed light (IPL) and sputter coating improve adhesion of the nanocomposite fiber onto a QTF. Furthermore, IPL offers improved sensing performance due to the higher specific surface area and reduction in polymer content. In this study, hydrogen gas (H-2) is chosen as a target gas since it is a common energy source in fuel cell applications and byproduct in chemical reactions. An electrospinning solution containing polyaniline, multiwalled carbon nanotubes, and platinum nanoparticles is used to test H-2 gas sensing performance. The resulting multimodal sensors are selective to hydrogen versus other gases and vapors including methane, hexane, toluene, ammonia, ethanol, carbon dioxide, and oxygen. Furthermore, the sensors detect ppm levels of hydrogen gas even in the presence of high humidity that typically hinders gas sensor performance. The development of this sensor leads to a new method for compact and portable multimodal gas sensing.
机译:环境监测,定位泄漏和检测跟踪化学蒸气或气体需要精确和便携式的气体传感器。虽然已经开发了许多传感器,但很少可以迅速且选择性地检测每百万(PPM)浓度变化的部分。在这项工作中,我们通过在石英调谐叉(QTF)的叉之间沉积单个纳米复合纤维来制造多峰气体传感器。由此产生的传感器是便携式的,并通过应用化学机械传感来实现多模式方法,以进行灵敏度和电化学感测选择性。近场静电纺丝(NFES)产生具有类似于500nm直径的柔性和半导电纳米复合纤维,可以集成到作为环境气体传感器的电子系统中。强烈的脉冲光(IPL)和溅射涂层改善纳米复合纤维粘附到QTF上。此外,由于较高的表面积和聚合物含量降低,IPL提供了改善的感测性能。在该研究中,选择氢气(H-2)作为靶气体,因为它是燃料电池应用中的常见能源和化学反应中的副产物。含有聚苯胺,多晶碳纳米管和铂纳米颗粒的静电纺丝溶液用于测试H-2气体感测性能。所得到的多式联传感器是选择性的氢,而其他气体和蒸汽,包括甲烷,己烷,甲苯,氨,乙醇,二氧化碳和氧气。此外,即使在通常阻碍气体传感器性能的高湿度存在下,传感器即使在高湿度存在下检测PPM水平的氢气水平。该传感器的开发导致紧凑型和便携式多峰气体感测的新方法。

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