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首页> 外文期刊>Sensors and Actuators >Au Decorated ZnO hierarchical architectures: Facile synthesis, tunable morphology and enhanced CO detection at room temperature
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Au Decorated ZnO hierarchical architectures: Facile synthesis, tunable morphology and enhanced CO detection at room temperature

机译:金装饰的ZnO分层体系结构:易于合成,可调整的形态和在室温下增强的CO检测

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摘要

A highly selective and sensitive gas sensing material was prepared by decorating gold (Au) nanoparticles on zinc oxide (ZnO) nanostructure. First, zinc oxide architectures were synthesised through facile one-pot hydrothermal synthesis route by using zinc acetate as the metal precursors, ethanolamine as the organic Lewis base and water as the reaction medium. The versatile zinc oxide architectures such as (i) nanostars (ZNS), (ii) marigold flower (ZMF), (iii) nanorods assembled flower (ZNF) and (iv) nanorods (ZNR) were successfully synthesised by the controlled variation of the reaction medium mole ratio. The crystal structure and morphological evaluation of the as prepared material were investigated in detail by several analytical techniques, and the findings are consistent with each other. The carbon monoxide (CO) sensing ability of the as prepared materials was carried out at different sensing temperature (Ts ≤300℃) and at different gas concentration (5-1000ppm). Gas sensing study clearly shows that the sensor responses are found to be morphology and surface area dependent. Among all the zinc oxide nanostructures, nanostars exhibits excellent sensitivity (S_R ~ 31 toward 5 ppm ) at the optimized sensing temperature of 275 ℃ Further, to improve the sensing characteristics and to reduce the operating temperature, different wt% of gold nanopartilces were decorated on the surface of zinc oxide nano-stars by solution impregnation technique. Surface decoration of only 3 wt% gold nanoparticles incorporated zinc oxide nanostars exhibits enhanced sensing response (S_R ~15 toward 50 ppm) at 35 ℃ with an excellent response (Γ_(RES) ~8 s) and recovery (Γ_(REC) ~ 15 s) time. Sensor also posses excellent selectivity toward CO compare to other interfering gases such as methanol, ethanol, acetone and hydrogen.
机译:通过在氧化锌(ZnO)纳米结构上装饰金(Au)纳米颗粒,制备了高度选择性和灵敏的气体传感材料。首先,以乙酸锌为金属前体,乙醇胺为有机路易斯碱,水为反应介质,通过简便的一锅水热合成路线合成了氧​​化锌结构。通过(i)纳米星(ZNS),(ii)万寿菊花(ZMF),(iii)纳米棒组装花(ZNF)和(iv)纳米棒(ZNR)成功地合成了多种氧化锌结构。反应介质的摩尔比。通过几种分析技术对所制备材料的晶体结构和形态学评价进行了详细的研究,结果彼此一致。在不同的感测温度(Ts≤300℃)和不同的气体浓度(5-1000ppm)下,对所制得的材料进行一氧化碳(CO)感测。气体传感研究清楚地表明,发现传感器的响应取决于形态和表面积。在所有氧化锌纳米结构中,纳米星在275℃的最佳感测温度下均具有出色的灵敏度(S_R〜31,朝向5 ppm)。此外,为了改善感测特性并降低工作温度,在金纳米粒子上装饰了不同重量百分比的金纳米粒子。溶液浸渍法制备氧化锌纳米星的表面。掺入氧化锌纳米星的仅3 wt%的金纳米颗粒的表面装饰在35℃时显示增强的感测响应(S_R〜15朝向50 ppm),具有出色的响应(Γ_(RES)〜8 s)和恢复(Γ_(REC)〜15 s)时间。与其他干扰气体(例如甲醇,乙醇,丙酮和氢气)相比,传感器还具有出色的CO选择性。

著录项

  • 来源
    《Sensors and Actuators》 |2017年第5期|990-1001|共12页
  • 作者单位

    School of Mechanical Systems Engineering, Chonnam National University, Cwangu-61186, Republic of Korea;

    School of Mechanical Systems Engineering, Chonnam National University, Cwangu-61186, Republic of Korea;

    School of Mechanical Systems Engineering, Chonnam National University, Cwangu-61186, Republic of Korea;

    School of Mechanical Systems Engineering, Chonnam National University, Cwangu-61186, Republic of Korea;

    School of Mechanical Systems Engineering, Chonnam National University, Cwangu-61186, Republic of Korea;

    School of Mechanical Systems Engineering, Chonnam National University, Cwangu-61186, Republic of Korea;

    School of Mechanical Systems Engineering, Chonnam National University, Cwangu-61186, Republic of Korea;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Zinc oxide nanostructures; Gold nanoparticles; Carbon monoxide sensor; Room temperature CO sensing;

    机译:氧化锌纳米结构;金纳米粒子;一氧化碳传感器室温CO感应;

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