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Single Walled Carbon IManotube-Metal Oxide Nanocomposites for Reversible and Reproducible Storage of Hydrogen

机译:单壁碳IManotube-金属氧化物纳米复合材料,用于可逆和可再生的氢存储

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摘要

Composite material consisting of single walled carbon nanotubes (SWCNTs) and metal oxide nanoparticles has been prepared and their hydrogen storage performance is evaluated. Metal oxides such as tin oxide (SnO2), tungsten trioxide (WO3), and titanium dioxide (TiO2) are chosen as the composite constituents. The composites have been prepared by means of ultrasonication. Then, the composite samples are deposited on alumina substrates and at 100 °C in a Sieverts-like hydrogenation setup, Characterization techniques such as transmission electron microscopy (TEM), Raman spectroscopy, scanning electron microscopy (SEM), powder X-ray diffraction (XRD), Fourier transform infrared (FTIR) spectroscopy, energy dispersive spectroscopy (EDS), CHN elemental analysis, and thermogravimetric (TG) measurements are used to analyze the samples at various stages of experiments. Hydrogen storage capacity of the composites namely, SWCNT-SnO2, SWCNT-WO-,, and SWCNT-TiO2 are found to be 1.1, 0.9, and 1.3 wt 96, respectively. Hydrogenated composite samples are stable at room temperature and desorption of hydrogen is found to be 100% reversible. Desorption temperature ranges and binding energy ranges of hydrogen have been measured from the desorption studies. The hydrogenation, dehydrogenation temperature, and binding energy of hydrogen fall in the recommended range of a suitable hydrogen storage medium applicable for fuel cell applications. Reproducibility and deterioration level of the composite samples have also been examined.
机译:制备了由单壁碳纳米管(SWCNT)和金属氧化物纳米颗粒组成的复合材料,并对其储氢性能进行了评估。选择金属氧化物,例如氧化锡(SnO2),三氧化钨(WO3)和二氧化钛(TiO2)作为复合成分。该复合材料已经通过超声处理制备。然后,将复合材料样品以类似Sieverts的氢化装置沉积在氧化铝基材上并在100°C下进行沉积,表征技术包括透射电子显微镜(TEM),拉曼光谱,扫描电子显微镜(SEM),粉末X射线衍射( XRD),傅立叶变换红外(FTIR)光谱,能量色散光谱(EDS),CHN元素分析和热重(TG)测量用于分析实验各个阶段的样品。发现复合材料即SWCNT-SnO2,SWCNT-WO-和SWCNT-TiO2的储氢量分别为1.1、0.9和1.3 wt 96。氢化复合材料样品在室温下稳定,并且发现氢的解吸是100%可逆的。从解吸研究中已经测量了氢的解吸温度范围和结合能范围。氢的氢化,脱氢温度和结合能在适用于燃料电池应用的合适氢存储介质的推荐范围内。还检查了复合样品的重现性和劣化程度。

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