Institute of Innovative Science and Technology, Tokai University, Hiratsuka , Kanagawa 259-1292, Japan.
Nanosensors Lab at the Centre for Nanotechnology & Advanced Biomaterials (CeNTAB), School of Electrical & Electronics Engineering (SEEE), SASTRA University , Thanjavur 613 401, India.
ACS Appl Mater Interfaces. 2017 Nov 1;9(43):38135-38145. doi: 10.1021/acsami.7b11561. Epub 2017 Oct 18.
Ethanol serves as a biomarker as well as a chemical reagent for several applications and has been predominantly used as an alternative fuel (E10 and E85). Development of sensors for the detection and monitoring of ethanol vapor at lower operating temperatures has gathered momentum in the recent past. In this work, we reported the synthesis of self-assembled ZnO nanowires using electrospun technique without using any external surfactants or capping agents and their room temperature ethanol sensing properties. An inherent template namely monomer of the polymer poly(vinyl alcohol) (PVA) with two different molecular weights (14 000 and 140 000 g mol) was used along with the precursor zinc acetate dihydrate. The ZnO-PVA nanofibers have been tranformed to ZnO nanospheres and nanowires after calcination. The ratio of zinc precursor concentration to PVA polymer led to the enhanced carrier concentration of the resultant ZnO nanowire that enhanced, in turn, the sensing response toward ethanol vapor. The developed sensing elements have been systematically characterized to correlate their structural, morphological, and electrical properties with the respective room-temperature ethanol-sensing characteristics. The role of grain features and low activation energy of ZnO nanowires in coordination with the low dipole moment of ethanol resulted in the excellent response of 78 toward 100 ppm at room temperature with ultra-sensitive response and recovery times (9 and 12 s, respectively).
乙醇可用作生物标志物和化学试剂,广泛应用于多个领域,主要用作替代燃料(E10 和 E85)。近年来,开发用于在较低工作温度下检测和监测乙醇蒸气的传感器已成为热门研究课题。在这项工作中,我们报告了使用静电纺丝技术合成自组装 ZnO 纳米线,而无需使用任何外部表面活性剂或封端剂,以及它们在室温下对乙醇蒸气的传感性能。我们使用了一种固有模板,即聚合物聚乙烯醇(PVA)的单体,具有两种不同的分子量(14000 和 140000gmol),以及前驱体二水合乙酸锌。在煅烧后,ZnO-PVA 纳米纤维转变成 ZnO 纳米球和纳米线。锌前驱体浓度与 PVA 聚合物的比例导致所得 ZnO 纳米线的载流子浓度增强,从而提高了对乙醇蒸气的传感响应。开发的传感元件经过系统表征,将其结构、形态和电学性能与相应的室温乙醇传感特性相关联。ZnO 纳米线的晶粒特征和低激活能与乙醇的低偶极矩协同作用,导致在室温下对 100ppm 的乙醇具有优异的 78%响应,响应和恢复时间分别为 9 和 12s。