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首页> 外文期刊>International journal of hydrogen energy >Enhancing hydrogen storage on carbon nanotubes via hybrid chemical etching and Pt decoration employing supercritical carbon dioxide fluid
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Enhancing hydrogen storage on carbon nanotubes via hybrid chemical etching and Pt decoration employing supercritical carbon dioxide fluid

机译:通过使用超临界二氧化碳流体的混合化学蚀刻和Pt装饰来增强碳纳米管上的氢存储

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Acidic etching and Pt particle decoration were applied to modify the hydrogen absorption behavior of carbon nanotubes (CNTs). Two different acidic solutions, namely H2SO4/HNO3 and FeSO_4/H_2SO_4/H_2O_2, were used for etching treatment. A novel electroless deposition process, incorporating supercritical CO_2 (SC-CO2) fluid, was used to decorate finely-dispersed nano-sized Pt particles on CNTs. The hydrogen storage capacities of various modified CNTs were measured by using a high pressure thermal gravimetric microbalance (HPTGA). The experimental results showed that acidic etching could increase the surface defect density and lead to open-up of the caps of CNTs, resulting in an increase in the active adsorption site for physical sorption of H_4. The electroless deposition of nano-Pt particles on CNTs, using conventional electrolyte, could promote chemical sorption of hydrogen via spillover mechanism. By employing sc-CO_2 bath, the Pt particle size became much finer and more uniformly distributed on the surfaces of CNTs, giving rise to a high hydrogen storage capacity. When a hybrid process including sc-CO_2 Pt decoration following acidic etching was applied to modify CNTs, a substantial enhancement of hydrogen storage capacity (about 2.7 wt%) was observed.
机译:进行了酸性蚀刻和Pt颗粒修饰,以改变碳纳米管(CNT)的氢吸收行为。两种不同的酸性溶液,即H2SO4 / HNO3和FeSO_4 / H_2SO_4 / H_2O_2,被用于蚀刻处理。一种新颖的化学沉积工艺,结合了超临界CO_2(SC-CO2)流体,用于装饰CNT上的细分散的纳米级Pt颗粒。通过使用高压热重微量天平(HPTGA)测量了各种改性CNT的储氢能力。实验结果表明,酸性刻蚀可以增加表面缺陷的密度,并导致碳纳米管的帽盖张开,从而导致H_4物理吸附的活性吸附位增加。使用常规电解质在纳米碳纳米管上进行化学沉积,可以通过溢出机制促进氢的化学吸附。通过使用sc-CO_2浴,Pt的粒径变得更细并且更均匀地分布在CNT的表面上,从而产生了高的储氢能力。当应用包括在酸性蚀刻之后的sc-CO_2Pt装饰的混合工艺来修饰CNT时,观察到储氢容量显着提高(约2.7 wt%)。

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