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硼诱导纳米结构建共价键合三维碳纳米管固体。

Covalently bonded three-dimensional carbon nanotube solids via boron induced nanojunctions.

出版信息

Sci Rep. 2012;2:363. doi: 10.1038/srep00363. Epub 2012 Apr 13.

Abstract

The establishment of covalent junctions between carbon nanotubes (CNTs) and the modification of their straight tubular morphology are two strategies needed to successfully synthesize nanotube-based three-dimensional (3D) frameworks exhibiting superior material properties. Engineering such 3D structures in scalable synthetic processes still remains a challenge. This work pioneers the bulk synthesis of 3D macroscale nanotube elastic solids directly via a boron-doping strategy during chemical vapour deposition, which influences the formation of atomic-scale "elbow" junctions and nanotube covalent interconnections. Detailed elemental analysis revealed that the "elbow" junctions are preferred sites for excess boron atoms, indicating the role of boron and curvature in the junction formation mechanism, in agreement with our first principle theoretical calculations. Exploiting this material's ultra-light weight, super-hydrophobicity, high porosity, thermal stability, and mechanical flexibility, the strongly oleophilic sponge-like solids are demonstrated as unique reusable sorbent scaffolds able to efficiently remove oil from contaminated seawater even after repeated use.

摘要

碳纳米管(CNTs)之间的共价键的建立和其直筒形态的修饰是成功合成具有优异材料性能的基于纳米管的三维(3D)框架所需的两种策略。在可扩展的合成工艺中工程化此类 3D 结构仍然是一个挑战。这项工作开创了通过化学气相沉积过程中的硼掺杂策略直接批量合成 3D 宏观纳米管弹性固体的先河,该策略影响了原子级“肘节”结和纳米管共价连接的形成。详细的元素分析表明,“肘节”结是多余硼原子的首选位置,这表明硼和曲率在连接形成机制中的作用,与我们的第一性原理理论计算一致。利用这种材料的超轻重量、超疏水性、高多孔性、热稳定性和机械柔韧性,所制备的强亲油性海绵状固体被证明是独特的可重复使用的吸附剂支架,即使在重复使用后也能够有效地从受污染的海水中去除油。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0cfb/3325778/7d349c021a2d/srep00363-f1.jpg

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