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半导体单壁碳纳米管与苯重氮盐的结构依赖性反应活性。

Structure-dependent reactivity of semiconducting single-walled carbon nanotubes with benzenediazonium salts.

作者信息

Doyle Condell D, Rocha John-David R, Weisman R Bruce, Tour James M

机构信息

Departments of Chemistry and Mechanical Engineering and Materials Science, the R.E. Smalley Institute for Nanoscale Science and Technology, MS-222, Rice University, 6100 Main Street, Houston, Texas 77005, USA.

出版信息

J Am Chem Soc. 2008 May 28;130(21):6795-800. doi: 10.1021/ja800198t. Epub 2008 May 3.

Abstract

The addition of diazonium salts to single-walled carbon nanotubes (SWCNTs) in aqueous surfactant suspensions quenches the intrinsic near-infrared fluorescence of semiconducting SWCNTs through sidewall chemical reactions. Spectrally resolved fluorescence spectroscopy of mixed SWCNT samples has been used to measure structure-dependent relative reactivities in the initial stages of these reactions. For several 4-substituted benzenediazonium salts, Ar-R (Ar = N 2 (+)-C 6H 4 and R = Cl, NO 2, OMe), reactivities at pH 10 were found to be greatest for SWCNTs having the largest band gaps. The magnitude of this band gap dependence varies according to the R-group of the salt, with R = OMe showing the strongest variation. For R = OH, acidification of the sample to pH 5.5 results in reversal of the structural trend, as smaller band gap SWCNTs show slightly greater reactivities. The derivatization reactions observed here proceed concurrently, although at different rates, for semiconducting and metallic SWCNT species. These results therefore provide insight into the difficulties of separating metallic and semiconducting SWCNTs through selective reaction schemes and underscore the need for fluorescence spectroscopy to be used in assessing semiconducting SWCNT reactions.

摘要

在水性表面活性剂悬浮液中,将重氮盐添加到单壁碳纳米管(SWCNT)中,通过侧壁化学反应淬灭了半导体SWCNT的固有近红外荧光。混合SWCNT样品的光谱分辨荧光光谱已用于测量这些反应初始阶段结构依赖性的相对反应活性。对于几种4-取代苯重氮盐Ar-R(Ar = N₂⁺-C₆H₄且R = Cl、NO₂、OMe),发现在pH 10时,带隙最大的SWCNT反应活性最高。这种带隙依赖性的程度根据盐的R基团而变化,其中R = OMe表现出最强的变化。对于R = OH,将样品酸化至pH 5.5会导致结构趋势反转,因为带隙较小的SWCNT显示出稍高的反应活性。尽管速率不同,但这里观察到的衍生化反应对于半导体和金属SWCNT物种是同时进行的。因此,这些结果揭示了通过选择性反应方案分离金属和半导体SWCNT的困难,并强调了在评估半导体SWCNT反应中使用荧光光谱的必要性。

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