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Reversible dispersion and release of carbon nanotubes via cooperative clamping interactions with hydrogen-bonded nanorings

机译:通过与氢键纳米环的协同夹持相互作用碳纳米管可逆地分散和释放

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摘要

Due to their outstanding electronic and mechanical properties, single-walled carbon nanotubes (SWCNTs) are promising nanomaterials for the future generation of optoelectronic devices and composites. However, their scarce solubility limits their application in many technologies that demand solution-processing of high-purity SWCNT samples. Although some non-covalent functionalization approaches have demonstrated their utility in extracting SWCNTs into different media, many of them produce short-lived dispersions or ultimately suffer from contamination by the dispersing agent. Here, we introduce an unprecedented strategy that relies on a cooperative clamping process. When mixing (6,5)SWCNTs with a dinucleoside monomer that is able to self-assemble in nanorings via Watson–Crick base-pairing, a synergistic relationship is established. On one hand, the H-bonded rings are able to associate intimately with SWCNTs by embracing the tube sidewalls, which allows for an efficient SWCNT debundling and for the production of long-lasting SWCNT dispersions of high optical quality along a broad concentration range. On the other, nanoring stability is enhanced in the presence of SWCNTs, which are suitable guests for the ring cavity and contribute to the establishment of multiple cooperative noncovalent interactions. The inhibition of these reversible interactions, by just adding, for instance, a competing solvent for hydrogen-bonding, proved to be a simple and effective method to recover the pristine nanomaterial with no trace of the dispersing agent.
机译:由于其出色的电子和机械性能,单壁碳纳米管(SWCNT)是用于下一代光电器件和复合材料的有前途的纳米材料。但是,它们稀少的溶解度限制了其在许多要求对高纯度SWCNT样品进行溶液处理的技术中的应用。尽管一些非共价官能化方法已经证明了其在将SWCNT提取到不同介质中的实用性,但许多方法会产生短寿命的分散液,或最终遭受分散剂的污染。在这里,我们介绍了一种空前的策略,该策略依赖于合作的夹紧过程。当将(6,5)SWCNT与能够通过Watson-Crick碱基配对在纳米环中自组装的二核苷单体混合时,便建立了协同关系。一方面,H键环可通过拥抱管侧壁与SWCNT紧密结合,从而实现有效的SWCNT束缚,并在宽浓度范围内生产高光学质量的长效SWCNT分散体。另一方面,纳米碳纳米管的稳定性在SWCNT的存在下得以增强,而SWCNT则适合作为环形腔的客人,并有助于建立多种合作性非共价相互作用。仅通过添加例如竞争性氢键结合的溶剂来抑制这些可逆相互作用是一种简单有效的方法,可回收原始的纳米材料而无痕量的分散剂。

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