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基于纳米结构 Pd/WO3 双层膜的声表面波氢气传感器。

Surface Acoustic Wave Hydrogen Sensors Based on Nanostructured Pd/WO₃ Bilayers.

机构信息

Laser Department, Plasma and Radiation Physics, National Institute for Laser, Atomistilor # 409, 077125 Bucharest-Magurele, Romania.

出版信息

Sensors (Basel). 2018 Oct 26;18(11):3636. doi: 10.3390/s18113636.

Abstract

The effect of nanostructure of PLD (Pulsed Laser Deposition)-deposited Pd/WO₃ sensing films on room temperature (RT) hydrogen sensing properties of SAW (Surface Acoustic Wave) sensors was studied. WO₃ thin films with different morphologies and crystalline structures were obtained for different substrate temperatures and oxygen deposition pressures. Nanoporous films are obtained at high deposition pressures regardless of the substrate temperature. At lower pressures, high temperatures lead to WO₃ c-axis nanocolumnar growth, which promotes the diffusion of hydrogen but only once H₂ has been dissociated in the nanoporous Pd layer. XRD (X-ray Diffraction) analysis indicates texturing of the WO₃ layer not only in the case of columnar growth but for other deposition conditions as well. However, it is only the predominantly c-axis growth that influences film sensing properties. Bilayers consisting of nanoporous Pd layers deposited on top of such WO₃ layers lead to good sensing results at RT. RT sensitivities of 0.12⁻0.13 Hz/ppm to hydrogen are attained for nanoporous bilayer Pd/WO₃ films and of 0.1 Hz/ppm for bilayer films with a nanocolumnar WO₃ structure. SAW sensors based on such layers compare favorably with WO₃-based hydrogen detectors, which use other sensing methods, and with SAW sensors with dense Pd/WO₃ bilayers.

摘要

采用脉冲激光沉积(PLD)法制备的 Pd/WO₃ 传感薄膜的纳米结构对表面声波(SAW)传感器在室温(RT)下的氢气传感性能的影响进行了研究。针对不同的衬底温度和氧沉积压力,获得了具有不同形貌和晶体结构的 WO₃ 薄膜。无论衬底温度如何,在高沉积压力下都会得到纳米多孔薄膜。在较低的压力下,高温会导致 WO₃ 的 c 轴纳米柱状生长,这促进了氢气的扩散,但只有在纳米多孔 Pd 层中氢气已经离解的情况下才会促进扩散。X 射线衍射(XRD)分析表明,WO₃ 层不仅在柱状生长的情况下存在织构,而且在其他沉积条件下也存在织构。然而,只有主要的 c 轴生长会影响薄膜的传感性能。在这种 WO₃ 层之上沉积纳米多孔 Pd 层的双层结构在 RT 下可获得良好的传感效果。纳米多孔双层 Pd/WO₃ 薄膜的 RT 灵敏度达到 0.12⁻0.13 Hz/ppm,而具有纳米柱状 WO₃ 结构的双层薄膜的灵敏度为 0.1 Hz/ppm。基于这种薄膜的 SAW 传感器与使用其他传感方法的基于 WO₃ 的氢气探测器以及具有致密 Pd/WO₃ 双层的 SAW 传感器相比具有优势。

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