Space Confinement and Rotation Stress Induced Self-Organization of Double-Helix Nanostructure: A Nanotube Twist with a Moving Catalyst Head

纳米结构 材料科学 螺旋(腹足类) 纳米技术 纳米管 碳纳米管 自组装 三螺旋 制作 化学物理 结晶学 化学 立体化学 医学 生态学 替代医学 病理 蜗牛 生物
作者
Meng‐Qiang Zhao,Qiang Zhang,Gui‐Li Tian,Jia‐Qi Huang,Fei Wei
出处
期刊:ACS Nano [American Chemical Society]
卷期号:6 (5): 4520-4529 被引量:39
标识
DOI:10.1021/nn301421x
摘要

Inorganic materials with double-helix structure have attracted intensive attention due to not only their elegant morphology but also their amazing morphology-related potential applications. The investigation on the formation mechanism of the inorganic double-helix nanostructure is the first step for the fundamental studies of their materials or physical properties. Herein, we demonstrated the space confinement and rotation stress induced self-organization mechanism of the carbon nanotube (CNT)-array double helices under scanning electron microscopy by directly observing their formation process from individual layered double hydroxide flakes, which is a kind of hydrotalcite-like material composed of positively charged layers and charge-balancing interlayer anions. Space confinement is considered to be the most important extrinsic factor for the formation of CNT-array double helices. Synchronous growth of the CNT arrays oppositely from LDH flakes with space confinement on both sides at the same time is essential for the growth of CNT-array double helices. Coiling of the as-grown CNT arrays into double helices will proceed by self-organization, tending to the most stable morphology in order to release their internal rotation stress. Based on the demonstrated mechanism, effective routes were carried out to improve the selectivity for CNT-array double helices. The work provides a promising method for the fabrication of double-helix nanostructures with their two helices connected at the end by self-assembly.
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