首页> 外文期刊>Applied Surface Science >Utilization of carbon dots from jackfruit for real-time sensing of acetone vapor and understanding the electronic and interfacial interactions using density functional theory
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Utilization of carbon dots from jackfruit for real-time sensing of acetone vapor and understanding the electronic and interfacial interactions using density functional theory

机译:利用碳点从菠萝管进行丙酮蒸汽的实时感测,了解使用密度函数理论了解电子和界面相互作用

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摘要

Carbon dots are emerging carbon-based nanomaterials because of their unique optical properties, high surface area, and surface chelating functional groups. In this work, carbon dots were prepared from jackfruit using a one-step hydrothermal method and used as a sensing layer in an optical electronic nose for the real-time detection of acetone vapor at room temperature. The carbon dots showed blue photoluminescence with excitation-dependent fluorescence emission, excellent photostability, and a quantum yield of 5.2%. Using principal component analysis, the carbon dot-integrated electronic nose was able to distinguish acetone from hexane, ethanol, methanol, and water and between different concentrations of acetone in ethanol and aqueous solutions. From the time-dependent density functional theory calculations, an increase in carbon dot's extinction coefficients in bulk solvents was in a good agreement with the optical electronic nose results. The calculations of interaction energy using density functional theory method illustrated the electronic coupling and interfacial interactions between carbon dots and acetone and other volatile organic compounds. Interestingly, the unique ambipolar properties of carbon dots were computationally demonstrated. Furthermore, the photoluminescence of carbon dots was also exploited for the detection of acetone in aqueous solutions. Based on this work, our jackfruit-derived carbon dots were demonstrated to be versatile sensing materials for acetone in vapor and solution, and the computational methods highlighted the importance of interfacial electronic coupling towards unique sensing properties of carbon dots.
机译:由于其独特的光学性质,高表面积和表面螯合官能团,碳点是出现碳基纳米材料。在这项工作中,使用一步水热法制备碳点,用一步水热法制备在光学电子鼻中用作感测层,用于在室温下实时检测丙酮蒸汽。碳点显示出具有激发依赖性荧光发射的蓝色光致发光,优异的光稳定性,量子收率为5.2%。使用主成分分析,碳点集成的电子鼻能够将丙酮与己烷,乙醇,甲醇和水分区分离,以及在乙醇和水溶液中不同浓度的丙酮之间。从时间依赖的密度函数理论计算中,散装溶剂中的碳点消光系数的增加与光学电子鼻源的良好一致。使用密度函数理论方法的相互作用能量的计算说明了碳点和丙酮和其他挥发性有机化合物之间的电子耦合和界面相互作用。有趣的是,计算碳点的独特的Ambolar属性被计算证明。此外,还利用碳点的光致发光来检测水溶液中的丙酮。基于这项工作,我们的菠萝蜜衍生的碳点被证明是蒸气和溶液中丙酮的通用感应材料,并且计算方法突出了界面电子耦合朝向碳点独特感测性能的重要性。

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  • 来源
    《Applied Surface Science》 |2019年第1期|1233-1244|共12页
  • 作者单位

    Thammasat Univ Fac Sci & Technol Dept Chem Pathum Thani 12121 Thailand;

    Thammasat Univ Fac Sci & Technol Dept Chem Pathum Thani 12121 Thailand;

    Mahidol Univ Fac Med Technol Dept Radiol Technol Nakhon Fathom 73170 Thailand;

    Korea Natl Univ Transportat Dept It Convergence Brain Korea Plus 21 Chungju 380702 South Korea|Korea Natl Univ Transportat Dept Polymer Sci & Engn Chungju 380702 South Korea;

    Thammasat Univ Fac Sci & Technol Dept Chem Pathum Thani 12121 Thailand;

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