大阪大学 · 材料科学
Kazu Suenaga教授の研究室では、電子顕微鏡を用いたナノスケールの構造・動態解析を通じて、カーボンナノチューブ内に閉じ込められた分子や、ボロンナイトライド(BN)を含むカーボン系ナノ材料の原子レベルの構造と挙動を解明しています。特に、単一原子の特定や、分子の三次元的配置・相互作用の可視化に成功しており、ナノ材料の設計と応用に不可欠な知見を提供しています。
Figures are computed from collected data and may differ slightly.
Polyhedral and tubular graphitic nanoparticles made of carbon layers and boron nitride (BN) layers have been synthesized. These particles were observed in the soot collected on the anode deposit formed by arcing a hafnium diboride rod with graphite in a nitrogen atmosphere. Elemental profiles with subnanometer-scale resolution revealed a strong phase separation between BN layers and carbon layers along the radial direction. Most of these tubes have a sandwich structure with carbon layers both in
Electron energy-loss spectroscopy (EELS) is widely used to identify elemental compositions of materials studied by microscopy. We demonstrate that the sensitivity and spatial resolution of EELS can be extended to the single-atom limit. A chemical map for gadolinium (Gd) clearly reveals the distribution of Gd atoms inside a single chain of metallofullerene molecules (Gd@C82) generated within a single-wall carbon nanotube. This characterization technique thus provides the "eyes" to see and identif
High-resolution transmission electron microscopy revealed nearly atomically precise images of stepping conformational change and translational motion of single hydrocarbon molecules confined in carbon nanotubes. One or two C12 or C22 alkyl chains were tethered to a carborane end group and then embedded in the nanotubes. Images of the hydrocarbon chains interacting with each other and with a graphitic surface provide information on three-dimensional structures and dynamic molecular interactions t
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