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pH 敏感的单壁碳纳米管分散与解束:以溶菌酶为工具

pH-sensitive dispersion and debundling of single-walled carbon nanotubes: lysozyme as a tool.

作者信息

Nepal Dhriti, Geckeler Kurt E

机构信息

Department of Materials Science and Engineering, Gwangju Institute of Science and Technology, 1 Oryong-dong, Buk-gu, Gwangju 500-712, South Korea.

出版信息

Small. 2006 Mar;2(3):406-12. doi: 10.1002/smll.200500351.

Abstract

Highly dispersed and debundled carbon nanotubes were prepared in an aqueous solution of lysozyme using a combination of ultrasonication and ultracentrifugation. The product is a pH-sensitive dispersion, which remains in a highly dispersed state at pH<8 and pH>11, but in an aggregated state at pH 8-11. Photoluminescence measurements show that by changing the pH value, a reversible conversion of the highly dispersed state to the aggregated state (or vice versa) could be observed. Circular dichromism analysis confirmed that the secondary structure, as well as the majority of the tertiary structure, remains intact. Some lysozyme molecules were irreversibly bound to the nanotubes, which is possibly due to pi-pi or hydrophobic interactions. However, these interactions alone are not enough to produce fine dispersions of the nanotubes. Protonated amine interactions on the defect sites of the nanotubes play a vital role in the stabilization of the nanotubes below the isoelectric point and amine adsorption on the sidewalls of nanotubes occurs in cases where the pH value is higher than the isoelectric point.

摘要

采用超声处理和超速离心相结合的方法,在溶菌酶水溶液中制备了高度分散且解缠结的碳纳米管。产物是一种对pH敏感的分散体,在pH<8和pH>11时保持高度分散状态,但在pH 8-11时呈聚集状态。光致发光测量表明,通过改变pH值,可以观察到高度分散状态与聚集状态之间的可逆转变(反之亦然)。圆二色性分析证实,二级结构以及大部分三级结构保持完整。一些溶菌酶分子不可逆地结合到纳米管上,这可能是由于π-π或疏水相互作用。然而,仅这些相互作用不足以产生纳米管的精细分散体。纳米管缺陷位点上的质子化胺相互作用在低于等电点时纳米管的稳定中起着至关重要的作用,并且在pH值高于等电点的情况下,胺会吸附在纳米管的侧壁上。

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