Bimetals (Au-Pd, Au-Pt) loaded WO3 hybridized graphene oxide FET sensors for selective detection of acetone

Radha Bhardwaj, A. Hazra
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Abstract

Efficient detection of acetone is important for a variety of applications in pharmaceutical, automotive industries, medical diagnosis etc. Surface modification is one of the potential method to enhance the sensitivity as well as selectivity of any sensors. In recent days, surface functionalization with bimetallic nanoparticles become attractive because of its enhanced catalytic properties and the possibility to form discrete heterojunctions. In this study, WO3 flowered morphology was prepared by one step acid precipitation method and bimetallic nanoparticles of Au-Pd and Au-Pt were deposited on WO3/GO hybrid layer by one-step dip-coating process and fabricated a back gated field effect transistor (FET) structured sensor. Various morphological and structural characterizations were performed to study the various properties of the hybrid sensing layer. ID-VGS characteristics and the acetone sensing performance were measured for both the sensors i.e., Au-Pd/WO3/GO and Au-Pt/WO3/GO at room temperature. Among the two sensors, Au-Pt/WO3/GO FET sensor exhibited an appreciably high sensitivity of 56% towards 80 ppm acetone at room temperature under applied gate voltage (VGS) of 1.2V. The lower detection limit of the Au-Pt/WO3/GO FET sensor was 400 ppb of acetone where it showed a 3 % response. The sensing mechanism envisages that the bimetallic loading in the ternary form of the nanocomposite enhanced sensitivity significantly by the spill-over effect. Also, the application of an optimized gate voltage amplified the sensitivity of the FET structured sensors.
双金属(Au-Pd, Au-Pt)负载WO3杂化氧化石墨烯FET传感器用于丙酮的选择性检测
丙酮的高效检测在制药、汽车工业、医疗诊断等领域有着重要的应用。表面改性是提高传感器灵敏度和选择性的潜在方法之一。近年来,双金属纳米颗粒的表面功能化由于其增强的催化性能和形成离散异质结的可能性而变得有吸引力。本研究采用一步酸沉淀法制备WO3花状形貌,并采用一步浸涂法将Au-Pd和Au-Pt双金属纳米颗粒沉积在WO3/GO杂化层上,制备了背门控场效应晶体管(FET)结构传感器。通过各种形态和结构表征来研究混合传感层的各种特性。测量了Au-Pd/WO3/GO和Au-Pt/WO3/GO两种传感器在室温下的ID-VGS特性和丙酮传感性能。其中,Au-Pt/WO3/GO FET传感器在1.2V栅极电压下,室温下对80ppm丙酮的灵敏度高达56%。Au-Pt/WO3/GO FET传感器的最低检测限为400 ppb丙酮,其响应率为3%。传感机制设想了三元形式的双金属负载通过溢出效应显着增强了纳米复合材料的灵敏度。此外,优化栅极电压的应用提高了FET结构传感器的灵敏度。
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