Irshad Muhammad, Mujahid Adnan, Afzal Adeel, Bajwa Sadia Z, Hussain Tajamal, Zaman Waheed-Uz-, Latif Usman, Athar Muhammad Makshoof
Institute of Chemistry, University of the Punjab, Quaid-e-Azam Campus 54590 Lahore Pakistan
Dipartimento di Chimica, Università Degli Studi di Bari "Aldo Moro" Via Orabona 4 70126 Bari Italy.
RSC Adv. 2018 Jun 22;8(41):22952-22962. doi: 10.1039/c8ra02170h. eCollection 2018 Jun 21.
Gasoline-ethanol (gasohol) fuel blends have gained considerable attention in the petroleum and energy sectors as relatively cheaper and greener high-octane alternative fuels with gasoline-comparable efficiency in modern transportation vehicles. However, due to different combustion rates the relative concentration of ethanol in gasohol fuel blends may vary over time. Furthermore, there is a need to monitor ethanol concentration in fuel blends for quality control applications. This article reports a miniaturized electronic sensor based on an interdigital capacitor (IDC) as the transducer and a dual-imprinted titania-polyaniline composite film as the receptor. The device has an active surface area of 0.9 cm and is easy to fabricate. The receptor material is synthesized by imprinting ethanol in both titania sol (EITS, the matrix) and polyaniline nanoparticles (EIPani, the filler), and subsequently mixing them to obtain a dual-imprinted EITS-EIPani composite. The structural and morphological characteristics of the receptor layers are determined with Fourier transform infrared (FTIR) spectroscopy and atomic force microscopy (AFM), respectively. The IDC devices are fabricated with pristine EITS and dual-imprinted EITS-EIPani composite to test their metrological sensor characteristics in standard ethanol solutions and real-time gasohol fuel blends. The instant shift in capacitance is measured upon exposure to different concentrations of ethanol. These devices show excellent sensitivity and selectivity patterns and demonstrate reliable sensor response toward ethanol in different gasohol fuel blends with 1-10 vol% ethanol. The results of this study reveal that these miniaturized ethanol sensors are potentially useful for rapid analysis of ethanol in gasohol and may be optimized for onboard fuel quality control applications.
汽油 - 乙醇(乙醇汽油)混合燃料作为相对便宜且更环保的高辛烷值替代燃料,在现代运输车辆中具有与汽油相当的效率,因此在石油和能源领域受到了广泛关注。然而,由于燃烧速率不同,乙醇汽油混合燃料中乙醇的相对浓度可能会随时间变化。此外,为了进行质量控制,需要监测混合燃料中的乙醇浓度。本文报道了一种基于叉指电容器(IDC)作为换能器和双印迹二氧化钛 - 聚苯胺复合膜作为受体的小型化电子传感器。该器件的有效表面积为0.9平方厘米,易于制造。受体材料是通过在二氧化钛溶胶(EITS,基质)和聚苯胺纳米颗粒(EIPani,填料)中都印迹乙醇,然后将它们混合以获得双印迹EITS - EIPani复合材料而合成的。分别用傅里叶变换红外(FTIR)光谱和原子力显微镜(AFM)确定受体层的结构和形态特征。使用原始EITS和双印迹EITS - EIPani复合材料制造IDC器件,以测试它们在标准乙醇溶液和实时乙醇汽油混合燃料中的计量传感器特性。在暴露于不同浓度的乙醇时测量电容的即时变化。这些器件显示出优异的灵敏度和选择性模式,并证明了对含1 - 10体积%乙醇的不同乙醇汽油混合燃料中的乙醇具有可靠的传感器响应。这项研究的结果表明,这些小型化乙醇传感器可能对乙醇汽油中乙醇的快速分析有用,并且可以针对车载燃料质量控制应用进行优化。