Wang Yang, Yang Zhaohui, Jia Bingzheng, Chen Lan, Yan Chuanyu, Peng Feng, Mu Tiancheng, Xue Zhimin
Beijing Key Laboratory of Lignocellulosic Chemistry, State Key Laboratory of Efficient Production of Forest Resources, Beijing Forestry University, Beijing, 100083, China.
School of Chemistry and Life Resources, Renmin University of China, Beijing, 100872, China.
Adv Sci (Weinh). 2024 Sep;11(36):e2403724. doi: 10.1002/advs.202403724. Epub 2024 Jul 25.
Natural polymer-derived nanofibrils have gained significant interest in diverse fields. However, production of bio-nanofibrils with the hierarchical structures such as fibrillar structures and crystalline features remains a great challenge. Herein, an all-natural strategy for simple, green, and scalable top-down exfoliation silk nanofibrils (SNFs) in novel renewable deep eutectic solvent (DES) composed by amino acids and D-sorbitol is innovatively developed. The DES-exfoliated SNFs with a controllable fibrillar structures and intact crystalline features, novelty preserving the hierarchical structure of natural silk fibers. Owing to the amphiphilic nature, the DES-exfoliated SNFs show excellent capacity of assisting the exfoliation of several 2D-layered materials, i.e., h-BN, MoS, and WS. More importantly, the SNFs-assisted dispersion of BNNSs with a concentration of 59.3% can be employed to construct SNFs/BNNSs nanocomposite membranes with excellent mechanical properties (tensile strength of 416.7 MPa, tensile modulus of 3.86 GPa and toughness of 1295.4 KJ·m) and thermal conductivity (in-plane thermal conductivity coefficient of 3.84 W·m·K), enabling it to possess superior cooling efficiency compared with the commercial silicone pad.
天然聚合物衍生的纳米纤维在多个领域引起了广泛关注。然而,生产具有纤维状结构和晶体特征等层次结构的生物纳米纤维仍然是一个巨大的挑战。在此,创新性地开发了一种全天然策略,用于在由氨基酸和D-山梨醇组成的新型可再生深共熔溶剂(DES)中简单、绿色且可扩展地自上而下剥离丝纳米纤维(SNFs)。DES剥离的SNFs具有可控的纤维状结构和完整的晶体特征,新颖地保留了天然丝纤维的层次结构。由于其两亲性,DES剥离的SNFs表现出优异的辅助几种二维层状材料(即h-BN、MoS和WS)剥离的能力。更重要的是,浓度为59.3%的SNFs辅助分散的BNNSs可用于构建具有优异机械性能(拉伸强度为416.7MPa、拉伸模量为3.86GPa和韧性为1295.4KJ·m)和热导率(面内热导率系数为3.84W·m·K)的SNFs/BNNSs纳米复合膜,使其与商业硅胶垫相比具有更高的冷却效率。