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Fluorescent single-walled carbon nanotube aerogels in surfactant-free environments

机译:不含表面活性剂的环境中的荧光单壁碳纳米管气凝胶

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摘要

A general challenge in generating functional materials from nanoscale components is integrating them into useful composites that retain or enhance their properties of interest. Development of single walled carbon nanotube (SWNT) materials for optoelectronics and sensing has been especially challenging in that SWNT optical and electronic properties are highly sensitive to environmental interactions, which can be particularly severe in composite matrices. Percolation of SWNTs into aqueous silica gels shows promise as an important route for exploiting their properties, but retention of the aqueous and surfactant environment still impacts and limits optical response, while also limiting the range of conditions in which these materials may be applied. Here, we present for the first time an innovative approach to obtain highly fluorescent solution-free SWNT-silica aerogels, which provides access to novel photophysical properties. Strongly blue-shifted spectral features, revelation of new diameter-dependent gas-phase adsorption phenomena, and significant increase (approximately three times that at room temperature) in photoluminescence intensities at cryogenic temperatures all indicate greatly reduced SWNT-matrix interactions consistent with the SWNTs experiencing a surfactant-free environment. The results demonstrate that this solid-state nanomaterial will play an important role in further revealing the true intrinsic SWNT chemical and photophysical behaviors and represent for the first time a promising new solution- and surfactant-free material for advancing SWNT applications in sensing, photonics, and optoelectronics.
机译:由纳米级组分产生功能材料的一般挑战是将它们整合到有用的复合物中,这些复合物将保留或增强其感兴趣的特性。用于光电和传感的单壁碳纳米管(SWNT)材料的开发尤其具有挑战性,因为SWNT的光学和电子特性对环境相互作用高度敏感,这在复合基质中尤其严重。 SWNT渗透到水性硅胶中显示出有望成为开发其性能的重要途径,但是水性和表面活性剂环境的保留仍然影响并限制了光学响应,同时也限制了这些材料的使用条件范围。在这里,我们首次提出了一种创新的方法来获得高度不含荧光溶液的SWNT-二氧化硅气凝胶,这提供了获得新的光物理性质的途径。强烈的蓝移光谱特征,新的与直径相关的气相吸附现象的揭示以及低温下光致发光强度的显着增加(在室温下约为三倍)均表明SWNT与基质之间的相互作用大大降低,与经历的SWNT一致无表面活性剂的环境。结果表明,这种固态纳米材料将在进一步揭示SWNT的固有内在化学和光物理行为方面发挥重要作用,并首次代表了一种有希望的新型无溶液和无表面活性剂材料,可促进SWNT在传感,光子学,和光电。

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