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首页> 外文期刊>Nanotechnology >Laser-etch patterning of metal oxide coated carbon nanotube 3D architectures
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Laser-etch patterning of metal oxide coated carbon nanotube 3D architectures

机译:Metal氧化物涂层碳纳米管3D架构的激光蚀刻图案化

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This paper describes a way to fabricate novel hybrid low density nanostructures containing both carbon nanotubes (CNTs) and ceramic nanotubes. Using atomic layer deposition, a thin film of aluminum oxide was conformally deposited on aligned multiwall CNT foams in which the CNTs make porous, three-dimensional interconnected networks. A CO2 laser was used to etch pure alumina nanotube structures by burning out the underlying CNT substrate in discrete locations via the printed laser pattern. Structural and morphological transitions during the calcination process of aluminum oxide coated CNTs were investigated through in situ transmission electron microscopy and high-resolution scanning electron microscopy. Laser parameters were optimized to etch the CNT away (i.e. etching speed, power and focal length) while minimizing damage to the alumina nanotubes due to overheating. This study opens a new route for fabricating very low density three dimensionally patterned materials with areas of dissimilar materials and properties. To demonstrate the attributes of these structures, the etched areas were used toward anisotropic microfluidic liquid flow. The demonstration used the full thickness of the material to make complex pathways for the liquid flow in the structure. Through tuning of processing conditions, the alumina nanotube (etched) regions became hydrophilic while the bulk material remained hydrophobic and electrically conductive.
机译:本文描述了制造含有碳纳米管(CNT)和陶瓷纳米管的新型杂化低密度纳米结构的方法。使用原子层沉积,将氧化铝的薄膜共形地沉积在对准的多壁CNT泡沫上,其中CNT制造多孔的三维互连网络。通过通过印刷的激光图案在离散位置中的离散位置燃烧下面的CNT基板来蚀刻纯氧化铝纳米管结构。通过原位透射电子显微镜和高分辨率扫描电子显微镜研究了氧化铝涂覆CNT煅烧过程中的结构和形态转变。优化激光参数以蚀刻CNT(即蚀刻速度,功率和焦距),同时由于过热而最小化对氧化铝纳米管的损坏。本研究开辟了一种用于制造非常低密度的三维图案化材料的新途径,具有不同材料和性质的区域。为了证明这些结构的属性,蚀刻区域朝向各向异性微流体液体流动。该示范用来使用材料的全厚度,以制备结构中液体流动的复杂途径。通过调节加工条件,氧化铝纳米管(蚀刻)区域变得亲水,而散装材料保持疏水和导电。

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