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用于高效氢纳米传感器的金修饰氧化锌纳米线的低温溶液合成

Low-Temperature Solution Synthesis of Au-Modified ZnO Nanowires for Highly Efficient Hydrogen Nanosensors.

作者信息

Lupan Oleg, Postica Vasile, Wolff Niklas, Su Jun, Labat Frédéric, Ciofini Ilaria, Cavers Heather, Adelung Rainer, Polonskyi Oleksandr, Faupel Franz, Kienle Lorenz, Viana Bruno, Pauporté Thierry

机构信息

Institut de Recherche de Chimie Paris-IRCP, Chimie ParisTech , PSL Université , rue Pierre et Marie Curie 11 , 75231 Paris Cedex 05 , France.

Functional Nano Materials, Institute for Materials Science, Faculty of Engineering , Kiel University , str. Kaiserstraße 2 , D-24143 Kiel , Germany.

出版信息

ACS Appl Mater Interfaces. 2019 Sep 4;11(35):32115-32126. doi: 10.1021/acsami.9b08598. Epub 2019 Aug 21.

Abstract

In this research, the low-temperature single-step electrochemical deposition of arrayed ZnO nanowires (NWs) decorated by Au nanoparticles (NPs) with diameters ranging between 10 and 100 nm is successfully demonstrated for the first time. The AuNPs and ZnO NWs were grown simultaneously in the same growth solution in consideration of the HAuCl concentration. Optical, structural, and chemical characterizations were analyzed in detail, proving high crystallinity of the NWs as well as the distribution of Au NPs on the surface of zinc oxide NWs demonstrated by transmission electron microscopy. Individual Au NPs-functionalized ZnO NWs (Au-NP/ZnO-NWs) were incorporated into sensor nanodevices using an focused ion bean/scanning electron microscopy (FIB/SEM) scientific instrument. The gas-sensing investigations demonstrated excellent selectivity to hydrogen gas at room temperature (RT) with a gas response, /, as high as 7.5-100 ppm for Au-NP/ZnO-NWs, possessing a AuNP surface coverage of ∼6.4%. The concentration of HAuCl in the electrochemical solution was observed to have no significant impact on the gas-sensing parameters in our experiments. This highlights the significant influence of the total Au/ZnO interfacial area establishing Schottky contacts for the achievement of high performances. The most significant performance of H response was observed for gas concentrations higher than 500 ppm of H in the environment, which was attributed to the surface metallization of ZnO NWs during exposure to hydrogen. For this case, an ultrahigh response of about 32.9 and 47 to 1000 and 5000 ppm of H was obtained, respectively. Spin-polarized periodic density functional theory calculations were realized on Au/ZnO bulk and surface-functionalized models, validating the experimental hypothesis. The combination of H gas detection at RT, ultralow power consumption, and reduced dimensions makes these micro-nanodevices excellent candidates for hydrogen gas leakage detection, including hydrogen gas monitoring (less than 1 ppm).

摘要

在本研究中,首次成功展示了低温单步电化学沉积由直径在10至100纳米之间的金纳米颗粒(NP)修饰的阵列氧化锌纳米线(NW)。考虑到HAuCl浓度,金纳米颗粒和氧化锌纳米线在同一生长溶液中同时生长。对其光学、结构和化学特性进行了详细分析,透射电子显微镜证明了纳米线具有高结晶度以及金纳米颗粒在氧化锌纳米线表面的分布情况。使用聚焦离子束/扫描电子显微镜(FIB/SEM)科学仪器将单个金纳米颗粒功能化的氧化锌纳米线(Au-NP/ZnO-NWs)整合到传感器纳米器件中。气敏研究表明,在室温(RT)下对氢气具有优异的选择性,对于Au-NP/ZnO-NWs,气体响应高达7.5至100 ppm,金纳米颗粒表面覆盖率约为6.4%。在我们的实验中观察到,电化学溶液中HAuCl的浓度对气敏参数没有显著影响。这突出了建立肖特基接触的总金/氧化锌界面面积对实现高性能的重大影响。在环境中氢气浓度高于500 ppm时观察到了最高的氢气响应性能,这归因于氧化锌纳米线在暴露于氢气期间的表面金属化。对于这种情况,分别获得了对1000 ppm和5000 ppm氢气的约32.9和47的超高响应。对金/氧化锌体相和表面功能化模型进行了自旋极化周期密度泛函理论计算,验证了实验假设。室温下氢气检测、超低功耗和尺寸减小的结合,使这些微纳米器件成为氢气泄漏检测(包括氢气监测(小于1 ppm))的极佳候选者。

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