School of Physical Science and Technology, ShanghaiTech University, 393 Middle Huaxia Road, Shanghai, 201210, China.
Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.
Adv Mater. 2018 Oct;30(43):e1802306. doi: 10.1002/adma.201802306. Epub 2018 Sep 10.
Major challenge remains in the design and fabrication of artificial hierarchical materials that mimic the structural and functional features of these natural materials. Here, a novel biomimetic strategy to assemble hierarchical materials from biological nanobuilding blocks is demonstrated. The constituents and structures of the materials are designed by multiscale modeling and then experimentally constructed by multiscale self-assembly. The resultant materials that consist of silk nanofibrils (SNFs), hydroxyapatite (HAP), and chitin nanofibrils (CNFs) show nacre-like structures with mechanical strength and toughness better than most natural nacre and nacre-like nanocomposites. In addition, these SNF/HAP:CNF nanocomposites can be programmed into "grab-and-release" actuators due to the gradient structure of the nanocomposites as well as the high water sensitivity of each of the components, and thusshow potential applications in the design of novel third-generation biomaterials for potential clinical applications. In addition, this "in silico design and biomimetic assembly" route represents a rational, low-cost, and efficient strategy for the design and preparation of robust, hierarchical, and functional nanomaterials to meet a variety of application requirements in bio-nanotechnologies.
在设计和制造模仿这些天然材料结构和功能特征的人工分层材料方面仍然存在重大挑战。在这里,展示了一种从生物纳米构建块组装分层材料的新型仿生策略。通过多尺度建模设计材料的组成和结构,然后通过多尺度自组装进行实验构建。由丝纳米纤维(SNF)、羟基磷灰石(HAP)和壳聚糖纳米纤维(CNF)组成的所得材料具有珍珠层状结构,其机械强度和韧性优于大多数天然珍珠层和珍珠层状纳米复合材料。此外,由于纳米复合材料的梯度结构以及各组成部分的高水分敏感性,这些 SNF/HAP:CNF 纳米复合材料可以编程为“抓取-释放”执行器,因此在设计用于潜在临床应用的新型第三代生物材料方面具有潜在应用。此外,这种“计算机设计和仿生组装”路线代表了一种合理、低成本、高效的策略,用于设计和制备坚固、分层和功能纳米材料,以满足生物纳米技术中各种应用的要求。