State Key Laboratory of Molecular Engineering of Polymers, Collaborative Innovation Center of Polymers and Polymer Composite Materials, Department of Macromolecular Science, Laboratory of Advanced Materials, Fudan University, Shanghai, 200433, People's Republic of China.
Research Centre for Analysis and Measurement, Fudan University, Shanghai 200433, People's Republic of China.
Mater Sci Eng C Mater Biol Appl. 2016 Jul 1;64:376-382. doi: 10.1016/j.msec.2016.03.113. Epub 2016 Apr 4.
Metal nanostructures that have unique size- and shape-dependent electronic, optical and chemical properties gain more and more attention in modern science and technology. In this article, we show the possibility that we are able to obtain different gold nanostructures simply with the help of silk nanofibrils. We demonstrate that only by varying the pH of the reaction solution, we get gold nanoparticles, nano-icosahedrons, nanocubes, and even microplates. Particularly, we develop a practical method for the preparation of gold microplates in acid condition in the presence of silk nanofibrils, which is impossible by using other forms of silk protein. We attribute the role of silk nanofibrils in the formation of gold nanostructure to their reduction ability from several specific amino acid residues, and the suitable structural anisotropic features to sustain the crystal growth after the reduction process. Although the main purpose of this article is to demonstrate that silk nanofibrils are able to mediate the formation of different gold nanostructure, we show the potential applications of these resulting gold nanostructures, such as surface-enhanced Raman scattering (SERS) and photothermal transformation effect, as same as those produced by other methods. In conclusion, we present in this communication a facile and green synthesis route to prepare various gold nanostructures with silk nanofibrils by simply varying pH in the reaction system, which has remarkable advantages in future biomedical applications.
具有独特的尺寸和形状依赖性的电子、光学和化学性质的金属纳米结构在现代科学技术中越来越受到关注。在本文中,我们展示了仅借助丝纳米纤维就有可能获得不同的金纳米结构的可能性。我们证明,仅通过改变反应溶液的 pH 值,就可以得到金纳米颗粒、纳米二十面体、纳米立方体,甚至微板。特别地,我们开发了一种在丝纳米纤维存在下在酸性条件下制备金微板的实用方法,这是使用其他形式的丝蛋白不可能实现的。我们将丝纳米纤维在金纳米结构形成中的作用归因于它们从几个特定的氨基酸残基中具有的还原能力,以及在还原过程后维持晶体生长的合适结构各向异性特征。尽管本文的主要目的是证明丝纳米纤维能够介导不同金纳米结构的形成,但我们展示了这些金纳米结构的潜在应用,例如表面增强拉曼散射 (SERS) 和光热转换效应,与其他方法产生的应用相同。总之,我们在本通讯中提出了一种简便、绿色的合成路线,通过简单地改变反应体系中的 pH 值,用丝纳米纤维制备各种金纳米结构,这在未来的生物医学应用中有显著的优势。