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碳化聚多巴胺纳米颗粒的表征表明聚多巴胺具有有序的超分子结构。

Characterization of carbonized polydopamine nanoparticles suggests ordered supramolecular structure of polydopamine.

作者信息

Yu Xiang, Fan Hailong, Liu Yang, Shi Zujin, Jin Zhaoxia

机构信息

Department of Chemistry, Renmin University of China , Beijing 100872, P. R. China.

出版信息

Langmuir. 2014 May 20;30(19):5497-505. doi: 10.1021/la500225v. Epub 2014 May 6.

Abstract

Polydopamine is not only a multifunctional biopolymer with promising optoelectronic properties but it is also a versatile coating platform for different surfaces. The structure and formation of polydopamine is an active area of research. Some studies have supposed that polydopamine is composed of covalently bonded dihydroxyindole, indoledione, and dopamine units, but others proposed that noncovalent self-assembly contributes to polydopamine formation as well. However, it is difficult to directly find the details of supramolecular structure of polydopamine via self-assembly. In this study, we first report the graphite-like nanostructure observed in the carbonized polydopamine nanoparticles in nitrogen (or argon) environment at 800 °C. Raman characterization, which presents the typical D band and G band, confirmed the existence of graphite-like nanostructures. Our observation provides clear evidence for a layered-stacking supramolecular structure of polydopamine. Particularly, the size of graphite-like domains is similar to that of disk-shaped aggregates hypothesized in previous study about the polymerization of 5,6-dihydroxyindole [ Biomacromolecules 2012 , 13 , 2379 ]. Analysis of the hierarchical structure of polydopamine helps us understand its formation.

摘要

聚多巴胺不仅是一种具有良好光电性能的多功能生物聚合物,也是一种适用于不同表面的通用涂层平台。聚多巴胺的结构和形成是一个活跃的研究领域。一些研究认为聚多巴胺由共价键连接的二羟基吲哚、吲哚二酮和多巴胺单元组成,但也有其他研究提出非共价自组装也有助于聚多巴胺的形成。然而,通过自组装直接找到聚多巴胺超分子结构的细节很困难。在本研究中,我们首次报道了在800℃的氮气(或氩气)环境中碳化的聚多巴胺纳米颗粒中观察到的类石墨纳米结构。拉曼表征显示出典型的D带和G带,证实了类石墨纳米结构的存在。我们的观察为聚多巴胺的层状堆积超分子结构提供了明确的证据。特别是,类石墨域的尺寸与先前关于5,6 - 二羟基吲哚聚合的研究中假设的盘状聚集体的尺寸相似[《生物大分子》2012年,第13卷,第2379页]。对聚多巴胺分级结构的分析有助于我们理解其形成过程。

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