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Gas Sensing of NiO-SCCNT Core-Shell Heterostructures: Optimization by Radial Modulation of the Hole- Accumulation Layer

机译:NiO-SCCNT核-壳异质结构的气体传感:通过径向调制空穴积累层来优化。

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Hierarchical core-shell (C-S) heterostructures composed of a NiO shell deposited onto stacked-cup carbon nanotubes (SCCNTs) are synthesized by atomic layer deposition (ALD). A film of NiO particles (0.80-21.8 nm in thickness) is uniformly deposited onto the inner and outer walls of the SCCNTs. The electrical resistance of the samples is found to increase of many orders of magnitude with the increasing of the NiO thickness. The response of NiO-SCCNT sensors toward low concentrations of acetone and ethanol at 200 degrees C is studied. The sensing mechanism is based on the modulation of the hole-accumulation region in the NiO shell layer upon chemisorption of the reducing gas molecules. The electrical conduction mechanism is further studied by the incorporation of an Al2O3 dielectric layer at NiO and SCCNT interfaces. The investigations on NiO-Al2O3-SCCNT, Al2O3-SCCNT, and NiO-SCCNT coaxial heterostructures reveal that the sensing mechanism is strictly related to the NiO shell layer. The remarkable performance of the NiO-SCCNT sensors toward acetone and ethanol benefits from the conformal coating by ALD, large surface area of the SCCNTs, and the optimized p-NiO shell layer thickness followed by the radial modulation of the space-charge region.
机译:通过原子层沉积(ALD)合成由沉积在叠杯碳纳米管(SCCNT)上的NiO壳组成的分层核-壳(C-S)异质结构。 NiO颗粒(厚度为0.80-21.8 nm)的薄膜均匀地沉积在SCCNT的内壁和外壁上。发现样品的电阻随着NiO厚度的增加而增加许多数量级。研究了NiO-SCCNT传感器在200摄氏度下对低浓度丙酮和乙醇的响应。感测机制基于还原性气体分子的化学吸附后NiO壳层中空穴积累区域的调制。通过在NiO和SCCNT界面处引入Al2O3介电层,可以进一步研究导电机理。对NiO-Al2O3-SCCNT,Al2O3-SCCNT和NiO-SCCNT同轴异质结构的研究表明,其传感机理与NiO壳层密切相关。 NiO-SCCNT传感器对丙酮和乙醇的卓越性能得益于ALD的保形涂层,SCCNT的大表面积以及优化的p-NiO壳层厚度,然后径向调制空间电荷区。

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