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Gas phase infiltration of carbon nanotubes in Ni Nanofoam via liquid injection chemical vapor deposition

机译:通过液体注射化学气相沉积镍纳米泡沫碳纳米管的气相渗透

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摘要

Abstract We demonstrate a new approach for improving the specific surface area of Ni nanofoam (NiNF) by exploiting its high void fraction for gas-phase infiltration of carbon nanotubes (CNTs) via liquid injection chemical vapor deposition (LICVD) process. To address the poor thermal stability of NiNF at CNT growth temperatures and low CNT nucleation density, a two-step pretreatment approach is implemented. First, a thin graphitic coating is deposited to stabilize NiNF via CH4 CVD at 550°C. Second, Fe catalyst is activated by depositing a thin layer of AlxOy (~2nm) on the graphite-coated NiNF. The infiltration of CNTs at 750°C increases the BET specific surface area of the resulting hybrid NiNF by a factor of over 20. A major appeal of this approach is that it can be utilized for tuning the structural properties of other nanostructures with relatively low temperature tolerance. Graphical abstract Display Omitted Highlights ? Efficient and scalable process for gas phase infiltration of CNTs in the voids of metallic nanofoams. ? CNT infiltration process improves surface area of Ni nanofoam by a factor of over 20. ? A two-step pretreatment approach improves thermal stability of Ni nanofoam and CNT growth. ]]>
机译:<![cdata [ 抽象 我们通过利用其高空隙分数来提高Ni Nanofoam(Ninf)的特定表面积的新方法通过液体注射化学气相沉积(LICVD)方法,用于碳纳米管(CNT)的气相渗透。为了解决NinF在CNT生长温度下的差的热稳定性和低CNT成核密度,实施了两步预处理方法。首先,沉积薄的石墨涂层以通过CH 4 CVD在550 ℃。第二,通过沉积Al x O Y (〜 2 NM)在石墨涂层的NinF上。在750 ℃下的Cnts渗透将所得杂交ninf的BET比表面积增加到20倍。这种方法的主要吸引力是它可以用于调整具有相对低温耐受性的其他纳米结构的结构性质。 图形摘要 显示省略 突出显示 金属纳米泡沫空隙中CNTS气相渗透的高效和可扩展方法。 CNT渗透过程将Ni纳米泡沫的表面积改善为20多个。 两步预处理方法提高了热稳定性Ni Nanofoam和CNT生长。 ]]>

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