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Au 功能化 ZnO 纳米线气体传感器用于苯和甲苯的检测。

A Au-functionalized ZnO nanowire gas sensor for detection of benzene and toluene.

机构信息

Tianjin Key Lab of Metal and Molecule-based Material Chemistry, Department of Chemistry, Nankai University, Tianjin, 300071, China.

出版信息

Phys Chem Chem Phys. 2013 Oct 28;15(40):17179-86. doi: 10.1039/c3cp52392f.

Abstract

A novel sensing hybrid-material of Au nanoparticles (Au NPs)-functionalized ZnO nanowires (Au-ZnO NWs) was successfully synthesized by a two-stage solution process. First, ZnO NWs were fabricated via a low-temperature one-pot hydrothermal method with SDSN introduced as a structure-directing agent. Afterward, the as-prepared ZnO NWs were used as supports to load Au NPs with small sizes via precipitating HAuCl4 aqueous solution with ammonia. The obtained samples were characterized by means of XRD, SEM, TEM and EDX. Both pristine and Au-ZnO NWs were practically applied as gas sensors to compare the effect of Au NPs on the sensing performances and the obtained results demonstrated that after functionalization by catalytic Au NPs, the hybrid sensor exhibited not only faster response and recovery speeds but also a higher response to benzene and toluene than the pristine ZnO sensor at 340 °C, especially showing high selectivity and long-term stability for low concentration toluene, which is rarely reported with this method, indicating its original sensor application in detecting benzene and toluene. To interpret the enhanced gas sensing mechanism, the strong spillover effect of the Au NPs and the increased Schottky barriers caused by the electronic interaction between Au NPs and ZnO NW support are believed to contribute to the improved sensor performance.

摘要

一种新型的金纳米粒子(Au NPs)功能化氧化锌纳米线(Au-ZnO NWs)的传感混合材料通过两步溶液法成功合成。首先,通过低温一锅水热法制备 ZnO NWs,其中 SDSN 被用作结构导向剂。然后,将制备的 ZnO NWs 用作负载 Au NPs 的载体,通过氨水沉淀 HAuCl4 水溶液来实现。所得样品通过 XRD、SEM、TEM 和 EDX 进行了表征。纯 ZnO NWs 和 Au-ZnO NWs 都被实际用作气敏传感器,以比较 Au NPs 对传感性能的影响,所得结果表明,在经过催化 Au NPs 功能化后,与纯 ZnO 传感器相比,混合传感器不仅具有更快的响应和恢复速度,而且对苯和甲苯的响应也更高,在 340°C 下,尤其对低浓度甲苯表现出高选择性和长期稳定性,这在该方法中很少有报道,表明其在检测苯和甲苯方面具有原始的传感器应用。为了解释增强的气体传感机制,认为 Au NPs 的强溢出效应和 Au NPs 与 ZnO NW 载体之间的电子相互作用引起的肖特基势垒增加有助于提高传感器性能。

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