温和打开程序,获得开放式的长单壁碳纳米管,用于后续填充

IF 3.1 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Aina Fitó-Parera , Miguel Ángel López Carrillo , Marcel Erwan Tonye , Maksiem Erkens , Pegie Cool , Wim Wenseleers , Salomé Forel , Sofie Cambré
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引用次数: 0

摘要

将分子封装在单壁碳纳米管(SWCNTs)的空心核心内,以创造新的功能已成为一个有趣的研究领域。为了填充SWCNTs,首先需要打开合成的SWCNTs。然而,典型的打开程序包括苛刻的(机械或化学)步骤,如强酸氧化、研磨和超声,这些步骤将SWCNTs切割成更短的片段。虽然SWCNTs的合成长度可达几微米,但打开的SWCNTs通常显示的最大长度仅为几百纳米,这限制了其用于填充长一维分子阵列或研究分子通过其空心核心的运输。在这里,我们提出了一种温和的打开程序来获得打开的长SWCNTs。通过比较不同处理步骤打开SWCNTs而不显著减少SWCNTs长度的能力,我们提出了一个简单的三步程序,包括空气氧化、温和酸性处理和高温真空退火,使样品中的所有SWCNTs几乎完全打开,而不受SWCNTs手性结构和直径的影响。该程序已应用于不同的swcnts起始批次,以确认其一般适用性。填水后SWCNTs的开孔是通过光谱学表征的,而SWCNTs的统计长度分布是通过原子力显微镜和SWCNTs的高光谱光致发光成像获得的。我们的研究结果表明,可以严格避免机械步骤,如研磨和超声,以获得相当一部分较长长度的打开SWCNTs。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Mild opening procedure to obtain open-ended yet long single-wall carbon nanotubes for subsequent filling

Mild opening procedure to obtain open-ended yet long single-wall carbon nanotubes for subsequent filling
Encapsulation of molecules inside the hollow core of single-wall carbon nanotubes (SWCNTs) has become an interesting research field to create new functionalities. To fill the SWCNTs, as-synthesized SWCNTs first need to be opened. Typical opening procedures however include harsh (mechanical or chemical) steps, such as strong acid oxidation, grinding, and sonication, which cut the SWCNTs into much shorter segments. While SWCNTs can be synthesized with lengths up to several micrometers, opened SWCNTs typically show maximum lengths of only a few hundred nanometers, limiting their use for filling with long, one-dimensional arrays of molecules or studying the transport of molecules through their hollow core. Here, we present a mild opening procedure to achieve open, yet long SWCNTs. By comparing different processing steps in their ability to open SWCNTs without significantly reducing the SWCNT length, we present a simple three-step procedure including an air oxidation, a mild acidic treatment, and a high-temperature vacuum annealing, resulting in nearly complete opening of all SWCNTs in a sample, independent of the SWCNT chiral structure and diameter. The procedure has been applied to different SWCNT starting batches to confirm its general applicability. While the opening of SWCNTs is characterized by optical spectroscopy after water filling, statistical SWCNT length distributions are obtained through atomic force microscopy and hyperspectral photoluminescence imaging of SWCNTs. Our results demonstrate that mechanical steps, such as grinding and sonication, can be strictly avoided to obtain a significant fraction of opened SWCNTs with longer lengths.
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来源期刊
Carbon Trends
Carbon Trends Materials Science-Materials Science (miscellaneous)
CiteScore
4.60
自引率
0.00%
发文量
88
审稿时长
77 days
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