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Individual hollow and mesoporous aero-graphitic microtube based devices for gas sensing applications

机译:基于单个中空和中孔航空微管的器件,用于气体传感应用

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摘要

In this work, individual hollow and mesoporous graphitic microtubes were integrated into electronic devices using a FIB/SEM system and were investigated as gas and vapor sensors by applying different bias voltages (in the range of 10 mV-1 V). By increasing the bias voltage, a slight current enhancement is observed, which is mainly attributed to the self-heating effect. A different behavior of ammonia NH_3 vapor sensing by increasing the applied bias voltage for hollow and mesoporous microtubes with diameters down to 300 nm is reported. In the case of the hollow microtube, an increase in the response was observed, while a reverse effect has been noticed for the mesoporous microtube. It might be explained on the basis of the higher specific surface area (SSA) of the mesoporous microtube compared to the hollow one. Thus, at room temperature when the surface chemical reaction rate (k) prevails on the gas diffusion rate (D_K) the structures with a larger SSA possess a higher response. By increasing the bias voltage, i.e., the overall temperature of the structure, D_K becomes a limiting step in the gas response. Therefore, at higher bias voltages the larger pores will facilitate an enhanced gas diffusion, i.e., a higher gas response. The present study demonstrates the importance of the material porosity towards gas sensing applications.
机译:在这项工作中,使用FIB / SEM系统将单个中空和中孔石墨微管集成到电子设备中,并通过施加不同的偏置电压(在10 mV-1 V范围内)作为气体和蒸汽传感器进行了研究。通过增加偏置电压,观察到轻微的电流增强,这主要归因于自热效应。据报道,通过增加直径低至300 nm的中空和中孔微管施加的偏置电压,氨NH_3蒸气感测的行为不同。在中空微管的情况下,观察到响应增加,而对于中孔微管则观察到相反的作用。可以基于中空微管比中空微管更高的比表面积(SSA)进行解释。因此,在室温下,当表面化学反应速率(k)占气体扩散速率(D_K)时,具有较大SSA的结构具有较高的响应。通过增加偏置电压,即结构的整体温度,D_K成为气体响应中的限制步骤。因此,在较高的偏压下,较大的孔将促进气体扩散,即较高的气体响应。本研究证明了材料孔隙度对气体传感应用的重要性。

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  • 来源
    《Applied Physics Letters》 |2017年第26期|263109.1-263109.5|共5页
  • 作者单位

    Functional Nanomaterials, Institute for Materials Science, Kiel University, Kaiserstr. 2, D-24143 Kiel,Germany,Department of Microelectronics and Biomedical Engineering, Technical University of Moldova,168 Stefan cel Mare Av., MD-2004 Chisinau, Republic of Moldova;

    Department of Microelectronics and Biomedical Engineering, Technical University of Moldova,168 Stefan cel Mare Av., MD-2004 Chisinau, Republic of Moldova;

    Institute of Polymers and Composites, Hamburg University of Technology, Denickestr. 15,D-21073 Hamburg, Germany;

    Institute of Polymers and Composites, Hamburg University of Technology, Denickestr. 15,D-21073 Hamburg, Germany;

    Functional Nanomaterials, Institute for Materials Science, Kiel University, Kaiserstr. 2, D-24143 Kiel,Germany;

    Institute of Polymers and Composites, Hamburg University of Technology, Denickestr. 15,D-21073 Hamburg, Germany;

    Institute of Polymers and Composites, Hamburg University of Technology, Denickestr. 15,D-21073 Hamburg, Germany;

    Functional Nanomaterials, Institute for Materials Science, Kiel University, Kaiserstr. 2, D-24143 Kiel,Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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