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首页> 外文期刊>Chemistry: A European journal >Press-Printed Conductive Carbon Black Nanoparticle Films for Molecular Detection at the Microscale
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Press-Printed Conductive Carbon Black Nanoparticle Films for Molecular Detection at the Microscale

机译:压印导电炭黑纳米颗粒薄膜,用于微尺度的分子检测

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Carbon black nanoparticle (CBNP) press-transferred film-based transducers for the molecular detection at the microscale level were proposed for the first time. Current-sensing atomic force microscopy (CS-AFM) revealed that the CBNP films were effectively press-transferred, retaining their good conductivity. A significant correlation between the morphology and the resistance was observed. The highest resistance was localized at the top of the press-transferred film protrusions, whereas low values are usually obtained at the deep crevices or grooves. The amount of press-transferred CBNPs is the key parameter to obtain films with improved conductivity, which is in good agreement with the electrochemical response. In addition, the conductivity of such optimum films was not only Ohmic; in fact, tunneling/hopping contributions were observed, as assessed by CS-AFM. The CBNP films acted as exclusive electrochemical transducers as evidenced by using two classes of molecules, that is, neurotransmitters and environmental organic contaminants. These results revealed the potential of these CBNP press-transferred films for providing new options in microfluidics and other related micro-and nanochemistry applications.
机译:首次提出了基于炭黑纳米粒子(CBNP)的压力转移薄膜传感器,用于微观水平的分子检测。电流感测原子力显微镜(CS-AFM)表明,CBNP薄膜可以有效地压力转移,并保持其良好的导电性。观察到形态和电阻之间的显着相关性。最高的电阻位于压印的薄膜突起的顶部,而通常在深的缝隙或凹槽处获得较低的电阻。压转移的CBNPs的量是获得具有改善的电导率的膜的关键参数,这与电化学响应良好吻合。另外,这种最佳膜的电导率不仅是欧姆,而且是导电的。实际上,根据CS-AFM的评估,发现了隧道/跳变贡献。通过使用两类分子,即神经递质和环境有机污染物,证明了CBNP膜充当专有的电化学换能器。这些结果表明,这些CBNP压印转移膜有潜力为微流体以及其他相关的微纳米化学应用提供新的选择。

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