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受生物启发的纳米金刚石聚多巴胺表面修饰及其对银纳米颗粒的还原作用

Bio-inspired Polydopamine Surface Modification of Nanodiamonds and Its Reduction of Silver Nanoparticles.

作者信息

Zeng Yun, Liu Wenyan, Wang Risheng

机构信息

Department of Chemistry, Missouri University of Science and Technology.

Center for Research in Energy and Environment, Department of Chemistry, Missouri University of Science and Technology.

出版信息

J Vis Exp. 2018 Nov 14(141). doi: 10.3791/58458.

Abstract

Surface functionalization of nanodiamonds (NDs) is still challenging due to the diversity of functional groups on the ND surfaces. Here, we demonstrate a simple protocol for the multifunctional surface modification of NDs by using mussel-inspired polydopamine (PDA) coating. In addition, the functional layer of PDA on NDs could serve as a reducing agent to synthesize and stabilize metal nanoparticles. Dopamine (DA) can self-polymerize and spontaneously form PDA layers on ND surfaces if the NDs and dopamine are simply mixed together. The thickness of a PDA layer is controlled by varying the concentration of DA. A typical result shows that a thickness of ~5 to ~15 nm of the PDA layer can be reached by adding 50 to 100 µg/mL of DA to 100 nm ND suspensions. Furthermore, the PDA-NDs are used as a substrate to reduce metal ions, such as Ag[(NH3)2], to silver nanoparticles (AgNPs). The sizes of the AgNPs rely on the initial concentrations of Ag[(NH3)2]. Along with an increase in the concentration of Ag[(NH3)2], the number of NPs increases, as well as the diameters of the NPs. In summary, this study not only presents a facile method for modifying the surfaces of NDs with PDA, but also demonstrates the enhanced functionality of NDs by anchoring various species of interest (such as AgNPs) for advanced applications.

摘要

由于纳米金刚石(NDs)表面官能团的多样性,其表面功能化仍然具有挑战性。在此,我们展示了一种通过使用受贻贝启发的聚多巴胺(PDA)涂层对NDs进行多功能表面改性的简单方案。此外,NDs上的PDA功能层可以作为还原剂来合成和稳定金属纳米颗粒。如果将NDs和多巴胺简单混合在一起,多巴胺(DA)可以自聚合并在NDs表面自发形成PDA层。PDA层的厚度通过改变DA的浓度来控制。一个典型的结果表明,向100 nm的ND悬浮液中添加50至100 µg/mL的DA,可以达到约5至约15 nm的PDA层厚度。此外,PDA-NDs被用作底物来将金属离子,如Ag[(NH₃)₂],还原为银纳米颗粒(AgNPs)。AgNPs的尺寸取决于Ag[(NH₃)₂]的初始浓度。随着Ag[(NH₃)₂]浓度的增加,NP的数量增加,NP的直径也增加。总之,本研究不仅提出了一种用PDA修饰NDs表面的简便方法,还通过锚定各种感兴趣的物种(如AgNPs)展示了NDs在高级应用中的增强功能。

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