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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Metal-assisted hydrogen storage on Pt-decorated single-walled carbon nanohorns
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Metal-assisted hydrogen storage on Pt-decorated single-walled carbon nanohorns

机译:Pt装饰的单壁碳纳米角上的金属辅助储氢

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The catalytic dissociation of hydrogen molecules by metal nanoparticles and spillover of atomic hydrogen onto various supports is a well-established phenomenon in catalysis. However, the mechanisms by which metal catalyst nanoparticles can assist in enhanced hydrogen storage on high-surface area supports are still under debate. Experimental measurements of metal-assisted hydrogen storage have been hampered by inaccurate estimation of atomically stored hydrogen deduced from comparative measurements between metal-decorated and undecorated samples. Here we report a temperature cycling technique combined with inelastic neutron scattering (INS) measurements of quantum rotational transitions of molecular H2 to more accurately quantify adsorbed hydrogen aided by catalytic particles using single samples. Temperature cycling measurements on single-wall carbon nanohorns (SWCNHs) decorated with 2-3 nm Pt nanoparticles showed 0.17% mass fraction of metal-assisted hydrogen storage (at ≈0.5 MPa) at room temperature. Temperature cycling of Pt-decorated SWCNHs using a Sievert's apparatus also indicated metal-assisted hydrogen adsorption of ≈0.08% mass fraction at 5 MPa at room temperature. No additional metal-assisted hydrogen storage was observed in SWCNH samples without Pt nanoparticles cycled to room temperature. The possible formation of C-H bonds due to spilled-over atomic hydrogen was also investigated using both INS and density functional theory calculations.
机译:金属纳米颗粒对氢分子的催化离解和原子氢向各种载体上的溢出是催化中公认的现象。然而,金属催化剂纳米颗粒可以帮助增强在高表面积载体上的氢存储的机制仍在争论中。金属辅助储氢的实验测量由于对金属装饰和未装饰样品之间的比较测量得出的原子储氢的不准确估计而受到阻碍。在这里,我们报告了一种温度循环技术,结合了分子H2的量子旋转跃迁的非弹性中子散射(INS)测量,可以更准确地定量使用单个样品的催化颗粒辅助的吸附氢。在饰有2-3 nm Pt纳米粒子的单壁碳纳米角(SWCNHs)上的温度循环测量显示,室温下金属辅助储氢的质量分数为0.17%(≈0.5MPa)。使用Sievert的装置对装饰有Pt的SWCNHs进行温度循环,还表明在室温下5 MPa下金属辅助的氢吸附质量分数约为0.08%。在未将Pt纳米颗粒循环至室温的情况下,在SWCNH样品中未观察到其他金属辅助的氢存储。还使用INS和密度泛函理论计算研究了由于原子氢溢出而可能形成的C-H键。

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