Horprathum M, Srichaiyaperk T, Samransuksamer B, Wisitsoraat A, Eiamchai P, Limwichean S, Chananonnawathorn C, Aiempanakit K, Nuntawong N, Patthanasettakul V, Oros C, Porntheeraphat S, Songsiriritthigul P, Nakajima H, Tuantranont A, Chindaudom P
Optical Thin-Film Laboratory, National Electronics and Computer Technology Center , Pathumthani 12120, Thailand.
ACS Appl Mater Interfaces. 2014 Dec 24;6(24):22051-60. doi: 10.1021/am505127g. Epub 2014 Dec 9.
In this work, we report an ultrasensitive hydrogen (H2) sensor based on tungsten trioxide (WO3) nanorods decorated with platinum (Pt) nanoparticles. WO3 nanorods were fabricated by dc magnetron sputtering with a glancing angle deposition (GLAD) technique, and decorations of Pt nanoparticles were performed by normal dc sputtering on WO3 nanorods with varying deposition time from 2.5 to 15 s. Crystal structures, morphologies, and chemical information on Pt-decorated WO3 nanorods were characterized by grazing-incident X-ray diffraction, field-emission scanning electron microscopy, energy-dispersive X-ray spectroscopy, and photoelectron spectroscopy, respectively. The effect of the Pt nanoparticles on the H2-sensing performance of WO3 nanorods was investigated over a low concentration range of 150-3000 ppm of H2 at 150-350 °C working temperatures. The results showed that the H2 response greatly increased with increasing Pt-deposition time up to 10 s but then substantially deteriorated as the deposition time increased further. The optimally decorated Pt-WO3 nanorod sensor exhibited an ultrahigh H2 response from 1530 and 214,000 to 150 and 3000 ppm of H2, respectively, at 200 °C. The outstanding gas-sensing properties may be attributed to the excellent dispersion of fine Pt nanoparticles on WO3 nanorods having a very large effective surface area, leading to highly effective spillover of molecular hydrogen through Pt nanoparticles onto the WO3 nanorod surface.
在本工作中,我们报道了一种基于装饰有铂(Pt)纳米颗粒的三氧化钨(WO₃)纳米棒的超灵敏氢气(H₂)传感器。WO₃纳米棒通过直流磁控溅射和掠角沉积(GLAD)技术制备,Pt纳米颗粒的装饰通过在WO₃纳米棒上进行常规直流溅射来实现,沉积时间从2.5秒到15秒不等。分别通过掠入射X射线衍射、场发射扫描电子显微镜、能量色散X射线光谱和光电子能谱对Pt装饰的WO₃纳米棒的晶体结构、形态和化学信息进行了表征。在150 - 350°C的工作温度下,研究了Pt纳米颗粒对WO₃纳米棒在150 - 3000 ppm低浓度H₂范围内的H₂传感性能的影响。结果表明,随着Pt沉积时间增加到10秒,H₂响应大幅增加,但随着沉积时间进一步增加,响应大幅恶化。在200°C时,优化装饰的Pt-WO₃纳米棒传感器对150 ppm和3000 ppm的H₂分别表现出从1530到214,000的超高H₂响应。优异的气敏性能可能归因于细小的Pt纳米颗粒在具有非常大有效表面积的WO₃纳米棒上的良好分散,导致分子氢通过Pt纳米颗粒高效溢流到WO₃纳米棒表面。