Bhattacharya Priyanka, Du Dan, Lin Yuehe
Pacific Northwest National Laboratory, , 902 Battelle Boulevard, PO Box 999, Richland, WA 99352, USA.
J R Soc Interface. 2014 Apr 16;11(95):20131067. doi: 10.1098/rsif.2013.1067. Print 2014 Jun 6.
The demand for green, affordable and environmentally sustainable materials has encouraged scientists in different fields to draw inspiration from nature in developing materials with unique properties such as miniaturization, hierarchical organization and adaptability. Together with the exceptional properties of nanomaterials, over the past century, the field of bioinspired nanomaterials has taken huge leaps. While on the one hand, the sophistication of hierarchical structures endows biological systems with multi-functionality, the synthetic control on the creation of nanomaterials enables the design of materials with specific functionalities. The aim of this review is to provide a comprehensive, up-to-date overview of the field of bioinspired nanomaterials, which we have broadly categorized into biotemplates and biomimics. We discuss the application of bioinspired nanomaterials as biotemplates in catalysis, nanomedicine, immunoassays and in energy, drawing attention to novel materials such as protein cages. Furthermore, the applications of bioinspired materials in tissue engineering and biomineralization are also discussed.
对绿色、经济实惠且环境可持续材料的需求,促使不同领域的科学家从自然界获取灵感,以开发具有诸如小型化、层次化组织和适应性等独特性能的材料。在过去的一个世纪里,受生物启发的纳米材料领域取得了巨大飞跃,这与纳米材料的卓越性能相得益彰。一方面,层次结构的复杂性赋予生物系统多功能性,而对纳米材料合成的控制则使具有特定功能的材料设计成为可能。本综述的目的是提供受生物启发的纳米材料领域全面、最新的概述,我们将其大致分为生物模板和仿生材料。我们讨论了受生物启发的纳米材料作为生物模板在催化、纳米医学、免疫分析和能源领域的应用,并关注蛋白质笼等新型材料。此外,还讨论了受生物启发的材料在组织工程和生物矿化中的应用。