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首页> 外文期刊>RSC Advances >Expanded graphite/NiAl layered double hydroxide nanowires for ultra-sensitive, ultra-low detection limits and selective NOx gas detection at room temperature
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Expanded graphite/NiAl layered double hydroxide nanowires for ultra-sensitive, ultra-low detection limits and selective NOx gas detection at room temperature

机译:用于超敏感,超低检测限和室温的选择性NOx气体检测的膨胀石墨/ Nial层状双氢氧化物纳米线

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摘要

To develop an ultra-sensitive and selective NOx gas sensor with an ultra-low detection limit, expanded graphite/NiAl layered double hydroxide (EG/NA) nanowires were synthesized by using hydrothermal method with EG as a template and adjusting the amount of urea in the reaction. X-ray diffraction and transmission electron microscopy showed EG/NA3 nanowires with a diameter of 5-10 nm and a length greater than 100 nm uniformly dispersed on the expanded graphite nanosheet (>8 layers). The synergy between NiAl layered double hydroxide (NiAl-LDH) and expanded graphite (EG) improved the gas sensing properties of the composites. As expected, gas sensing tests showed that EG/NA composites have superior performance over pristine NiAl-LDH. In particular, the EG/NA3 nanowire material exhibited an ultra-high response (R-a/R-g = 17.65) with ultra-fast response time (about 2 s) to 100 ppm NOx, an ultra-low detection limit (10 ppb) and good selectivity at room temperature (RT, 24 +/- 2 degrees C), which could meet a variety of application needs. Furthermore, the enhancement of the sensing response was attributed to the nanowire structure formed by NiAl-LDH in the EG interlayer and the conductive nanonetwork of interwoven nanowires.
机译:为了开发具有超低检测极限的超敏感和选择性NOx气体传感器,通过使用具有例如模板的水热法合成膨胀石墨/ Nial层状双氢氧化物(例如/ NA)纳米线并调整尿素量反应。 X射线衍射和透射电子显微镜显示出例如直径为5-10nm的Na3纳米线,长度大于100nm均匀地分散在膨胀的石墨纳米烯片(> 8层上)。 Nial层状双氢氧化物(NIAL-LDH)和膨胀石墨(例如)之间的协同作用改善了复合材料的气体传感性质。正如预期的那样,气体传感试验表明,例如/ Na复合材料对原始Nial -LDH具有优异的性能。特别地,EG / Na3纳米线材料具有超高响应(RA / RG = 17.65),具有超快速响应时间(约2s)至100ppm NOx,超低检测限(10 ppb)和良好室温(RT,24 +/- 2℃)的选择性,可以满足各种应用需求。此外,感测响应的增强归因于由例如中间层中的Nial-LDH形成的纳米线结构,以及交织纳米线的导电纳米纳米。

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  • 来源
    《RSC Advances》 |2019年第16期|共10页
  • 作者单位

    Heilongjiang Univ Sch Chem &

    Mat Sci Minist Educ Key Lab Funct Inorgan Mat Chem Harbin 150080 Heilongjiang Peoples R China;

    Heilongjiang Univ Sch Chem &

    Mat Sci Minist Educ Key Lab Funct Inorgan Mat Chem Harbin 150080 Heilongjiang Peoples R China;

    Heilongjiang Univ Sch Chem &

    Mat Sci Minist Educ Key Lab Funct Inorgan Mat Chem Harbin 150080 Heilongjiang Peoples R China;

    Heilongjiang Univ Sch Chem &

    Mat Sci Minist Educ Key Lab Funct Inorgan Mat Chem Harbin 150080 Heilongjiang Peoples R China;

    Heilongjiang Univ Sch Chem &

    Mat Sci Minist Educ Key Lab Funct Inorgan Mat Chem Harbin 150080 Heilongjiang Peoples R China;

    Heilongjiang Univ Sch Chem &

    Mat Sci Minist Educ Key Lab Funct Inorgan Mat Chem Harbin 150080 Heilongjiang Peoples R China;

    Heilongjiang Univ Sch Chem &

    Mat Sci Minist Educ Key Lab Funct Inorgan Mat Chem Harbin 150080 Heilongjiang Peoples R China;

    Heilongjiang Univ Sch Chem &

    Mat Sci Minist Educ Key Lab Funct Inorgan Mat Chem Harbin 150080 Heilongjiang Peoples R China;

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  • 正文语种 eng
  • 中图分类 化学;
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