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Well-defined Polymer Composites with Carbon-based Nanostructures

Well-defined Polymer Composites with Carbon-based Nanostructures
具有碳基纳米结构的明确聚合物复合材料
批准号:
249585-2012
负责人:
Adronov, Alex
金额:
$5.1万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2014
资助国家:
加拿大
项目状态:
已结题
起止时间:
2014-01-01 至 2015-12-31

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中文摘要
翻译
该项目将建立在Adronov研究小组在碳纳米管聚合物化学方面的专业知识基础上,以获得对聚合物-纳米管相互作用的基本理解。 碳纳米管是目前研究最广泛的纳米级材料,其市场价值预计到2015年将超过70亿美元。 然而,它们仍然具有几个显著的限制,这阻止了它们在商业产品中的广泛应用。 本文的工作重点是了解聚合物如何影响聚合物-碳纳米管复合物的性质,这具有潜在的广泛应用。 这项工作涉及共轭聚合物和单壁碳纳米管(SWNTs)之间的非共价或超分子相互作用的调查。Adronov小组先前已经表明,许多共轭聚合物强烈地结合到单壁碳纳米管表面,允许通过改变聚合物结构来调节聚合物-纳米管复合材料的性质。已经制备了可溶于有机溶剂和水的结构,并且已经显示出在表面上的纳米管图案化和生物传感器的开发中是有用的。 本提案旨在通过更详细地研究聚合物-纳米管相互作用来推进这项工作。 提出了测量结合强度和生产能够从混合物中仅结合一种特定类型的纳米管的聚合物的方法。 纳米管纯化方面的这些进展有可能提高单壁纳米管的商业可行性。 此外,我们建议生产可逆地结合到纳米管的聚合物,使得SWNT可以通过溶液中的聚合物相互作用来纯化,然后按需释放以释放原始纳米管。 还提出了在聚合物主体材料内均匀分布SWNT的几种方法,使得可以开发新的导电材料并用于触觉传感应用以及下一代生物传感器。 所有这些项目都将推动碳纳米管研究向加拿大人可以从中受益的应用方向发展。
英文摘要
This project will build on the expertise of the Adronov Research Group in the polymer chemistry of carbon nanotubes to gain a fundamental understanding of polymer-nanotube interactions. Carbon nanotubes are the most widely investigated nano-scale materials in existence, and their market value is projected to exceed $7 billion by 2015. However, they still have several significant limitations that prevent their widespread applicability in commercial products. The focus of the proposed work is to understand how polymers can affect the properties of polymer-carbon nanotube complexes, which have potential widespread applications. The proposed work involves the investigation of non-covalent, or supramolecular interactions between conjugated polymers and single-walled carbon nanotubes (SWNTs). The Adronov Group has previously shown that a number of conjugated polymers bind strongly to the SWNT surface, allowing modulation of the polymer-nanotube composite's properties through variation of the polymer structure. Structures that are soluble in both organic solvents and water have been prepared, and have been shown to be useful in nanotube patterning on surfaces and in the development of biosensors. The present proposal aims to advance this work by investigating the polymer-nanotube interaction in more detail. Methods to measure binding strength and produce polymers able to bind only one specific type of nanotube, out of a mixture, are proposed. Such advances in nanotube purification have the potential to improve the commercial viability of SWNTs. Furthermore, we propose to produce polymers that reversibly bind to nanotubes, such that SWNTs can be purified through polymer interactions in solution, and then released on demand to liberate pristine nanotubes. Several methods to homogeneously distribute SWNTs within polymeric host materials are also proposed, such that new, electrically conductive materials can be developed and used in tactile sensing applications, as well as in next-generation biosensors. All of these projects will drive the advancement of carbon nanotube research toward applications that Canadians can benefit from.
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