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Electrospun Polyaniline-Reduced Graphene Oxide Composite Nanofibers Based High Sensitive Ammonia Gas Sensor

机译:电纺聚苯胺还原氧化石墨烯复合纳米纤维的高灵敏度氨气传感器

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摘要

Ammonia is an important gas in many power plants and industrial processes so its detection is of extreme importance in environmental monitoring and process control due to its high toxicity. Ammonia’s threshold limit is 25 ppm and the exposure time limit is 8 h, however exposure to 35 ppm is only secure for 10 min.In this work a brief introduction to ammonia aspects are presented, like its physical and chemical properties, the dangers in its manipulation, its ways of production and its sources. The application areas in which ammonia gas detection is important and needed are also referred: environmental gas analysis (e.g. intense farming), automotive-, chemical- and medical industries. In order to monitor ammonia gas in these different areas there are some requirements that must be attended. These requirements determine the choice of sensor and, therefore, several types of sensors with different characteristics were developed, like metal oxides, surface acoustic wave-, catalytic-, and optical sensors, indirect gas analyzers, and conducting polymers. All the sensors types are described, but more attention will be given to polyaniline (PANI), particularly to its characteristics, syntheses, chemical doping processes, deposition methods, transduction modes, and its adhesion to inorganic materials. Besides this, short descriptions of PANI nanostructures, the use of electrospinning in the formation of nanofibers/microfibers, and graphene and its characteristics are included.The created sensor is an instrument that tries to achieve a goal of the medical community in the control of the breath’s ammonia levels being an easy and non-invasive method for diagnostic of kidney malfunction and/or gastric ulcers. For that the device should be capable to detect different levels of ammonia gas concentrations. So, in the present work an ammonia gas sensor was developed using a conductive polymer composite which was immobilized on a carbon transducer surface. The experiments were targeted to ammonia measurements at ppb level. Ammonia gas measurements were carried out in the concentration range from 1 ppb to 500 ppb. A commercial substrate was used; screen-printed carbon electrodes. After adequate surface pre-treatment of the substrate, its electrodes were covered by a nanofibrous polymeric composite. The conducting polyaniline doped with sulfuric acid (H2SO4) was blended with reduced graphene oxide (RGO) obtained by wet chemical synthesis. This composite formed the basis for the formation of nanofibers by electrospinning. Nanofibers will increase the sensitivity of the sensing material. The electrospun PANI-RGO fibers were placed on the substrate and then dried at ambient temperature.Amperometric measurements were performed at different ammonia gas concentrations (1 to 500 ppb). The I-V characteristics were registered and some interfering gases were studied (NO2, ethanol, and acetone). The gas samples were prepared in a custom setup and were diluted with dry nitrogen gas.Electrospun nanofibers of PANI-RGO composite demonstrated an enhancement in NH3 gas detection when comparing with only electrospun PANI nanofibers. Was visible higher range of resistance at concentrations from 1 to 500 ppb. It was also observed that the sensor had stable, reproducible and recoverable properties. Moreover, it had better response and recovery times. The new sensing material of the developed sensor demonstrated to be a good candidate for ammonia gas determination.
机译:氨气是许多发电厂和工业过程中的重要气体,因此由于其高毒性,其检测在环境监测和过程控制中极为重要。氨的极限浓度为25 ppm,暴露时间为8 h,但是暴露于35 ppm只能保证10分钟。在这项工作中,对氨的各个方面进行了简要介绍,例如其物理和化学性质,其存在的危险。操纵,其生产方式及其来源。还提到了氨气检测非常重要和需要的应用领域:环境气体分析(例如集约化养殖),汽车,化学和医疗行业。为了监视这些不同区域中的氨气,必须满足一些要求。这些要求决定了传感器的选择,因此,开发了几种具有不同特性的传感器,例如金属氧化物,表面声波传感器,催化传感器和光学传感器,间接气体分析仪和导电聚合物。描述了所有类型的传感器,但将更加关注聚苯胺(PANI),尤其是其特性,合成,化学掺杂工艺,沉积方法,转导模式及其对无机材料的粘附性。除此之外,还包括对PANI纳米结构的简短描述,电纺在纳米纤维/微纤维形成中的使用以及石墨烯及其特性。呼吸中的氨水平是诊断肾功能不全和/或胃溃疡的一种简便且无创的方法。为此,该设备应能够检测不同水平的氨气浓度。因此,在本工作中,使用固定在碳换能器表面上的导电聚合物复合材料开发了一种氨气传感器。实验针对的是ppb水平的氨气测量。氨气的测量浓度范围为1 ppb至500 ppb。使用商业基质;丝网印刷碳电极。在对基材进行充分的表面预处理之后,其电极被纳米纤维聚合物复合材料覆盖。将掺杂有硫酸(H2SO4)的导电聚苯胺与通过湿化学合成获得的还原氧化石墨烯(RGO)混合。这种复合材料为通过电纺丝形成纳米纤维奠定了基础。纳米纤维将提高传感材料的灵敏度。将静电纺制的PANI-RGO纤维放在基材上,然后在环境温度下干燥。在不同的氨气浓度(1至500 ppb)下进行电流分析。记录了I-V特性,并研究了一些干扰气体(NO2,乙醇和丙酮)。气体样品在常规设置中制备,并用干燥氮气稀释。与仅电纺PANI纳米纤维相比,PANI-RGO复合材料的电纺纳米纤维显示出NH3气体检测的增强。在1到500 ppb的浓度范围内可见较高的电阻范围。还观察到该传感器具有稳定,可再现和可恢复的特性。而且,它具有更好的响应和恢复时间。已开发的传感器的新传感材料被证明是确定氨气的理想选择。

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