Chen Ran, Liu Junfeng, Yang Chenjing, Weitz David A, He Haonan, Li Dewen, Chen Dong, Liu Kai, Bai Hao
John A. Paulson School of Engineering and Applied Sciences , Harvard University , 11 Oxford Street , Cambridge , Massachusetts 02138 , United States.
Changchun Institute of Applied Chemistry, Chinese Academy of Sciences , Renmin Road 5625 , Changchun 130022 , China.
ACS Appl Mater Interfaces. 2019 Jul 3;11(26):23616-23622. doi: 10.1021/acsami.9b06500. Epub 2019 Jun 19.
Inspired by the helicoidally organized microstructure of stomatopods' smasher dactyl club, a type of impact-resistant composite film reinforced with periodic helicoidal nanofibers is designed and fabricated, which reproduces the structural complexity of the natural material. To periodically align nanofibers in a helicoidal structure, an electrospinning system is developed to better control the alignment of electrospun nanofibers. When the nanofiber scaffold is embedded in an epoxy matrix, the presence of a hierarchical structure allows the composite films to achieve properties well beyond their constituents. The composite film exhibits excellent optical transparency and mechanical properties, such as enhanced tensile strength, ductility, and defect tolerance. With elegant design mimicking nature's hierarchical structure at multilength scales, the composite films could effectively release the impact energy and greatly increase the impact resistance, suggesting that the transparent composite films are promising protective layers suitable for various applications.
受口足类动物粉碎性指节棒螺旋状组织微观结构的启发,设计并制备了一种由周期性螺旋纳米纤维增强的抗冲击复合薄膜,该薄膜再现了天然材料的结构复杂性。为了使纳米纤维以螺旋结构周期性排列,开发了一种静电纺丝系统,以更好地控制电纺纳米纤维的排列。当纳米纤维支架嵌入环氧树脂基体中时,分层结构的存在使复合薄膜具有远超其组分的性能。该复合薄膜具有优异的光学透明度和机械性能,如拉伸强度、延展性和缺陷耐受性增强。通过巧妙模仿多长度尺度上自然分层结构的设计,复合薄膜能够有效释放冲击能量并大大提高抗冲击性,这表明这种透明复合薄膜有望成为适用于各种应用的保护层。