Articular Cartilage Inspired Ultra‐Strong and Tough Bio‐based Polyurethane Nanofiber Membranes

IF 16.1 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Xueqin Li, Ningbo Cheng, Yanyan Lin, Bin Zhang, Yinzhi Yang, Chengran Qu, Xianfeng Wang, Jianyong Yu, Bin Ding
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引用次数: 0

Abstract

Bio‐based polyurethanes are promising sustainable elastomers whose polymeric network structure has a decisive impact on their properties. However, existing bio‐based polyurethanes face challenges in simultaneously enhancing mechanical strength and toughness. Inspired by the multi‐level heterogeneous structure of articular cartilage, we propose a bionic design strategy of rigid‐flexible coupled supramolecular cross‐linking networks to prepare bio‐based polyurethane elastomers with enhanced strength and toughness. By incorporating the asymmetric coupling of rigid furan rings and flexible aliphatic side chains into the molecular chains, a dynamic hydrogen bond network with a gradient distribution of bond energy was constructed, achieving uniform microphase separation between the soft phase (amorphous) and the hard phase (crystalline). Nanofiber membranes were fabricated by rigid‐flexible coupled polyurethane electrospinning, where the microphase separated structure is further transformed into dynamic crystalline domains. Under external force, multi‐level energy dissipation is achieved through the breaking and controllable recombination of hydrogen bonds within the crystalline domain. resulting in polyurethane nanofiber membranes with significantly enhanced mechanical strength and toughness (fracture strength: 31.37 MPa, fracture strain: 731.04%, toughness: 102.13 MJ m−3). This network design strategy expands the potential of bio‐based elastomers in smart wearable textiles, flexible electronic devices, and biomedical applications, thereby advancing the development of sustainable high‐performance polymers.
关节软骨启发的超强和坚韧的生物基聚氨酯纳米纤维膜
生物基聚氨酯是一种很有前途的可持续发展的弹性体,其聚合物网络结构对其性能有决定性的影响。然而,现有的生物基聚氨酯在同时提高机械强度和韧性方面面临挑战。受关节软骨多层非均质结构的启发,我们提出了一种刚柔耦合超分子交联网络的仿生设计策略,以制备具有增强强度和韧性的生物基聚氨酯弹性体。通过在分子链中加入刚性呋喃环与柔性脂肪侧链的不对称耦合,构建了键能梯度分布的动态氢键网络,实现了软相(无定形)与硬相(结晶)的均匀微相分离。采用刚柔耦合聚氨酯静电纺丝技术制备纳米纤维膜,将微相分离结构进一步转化为动态晶域。在外力作用下,晶体内氢键的断裂和可控制的复合实现了多级能量耗散。制备的聚氨酯纳米纤维膜具有明显的机械强度和韧性增强(断裂强度31.37 MPa,断裂应变731.04%,韧性102.13 MJ m−3)。这种网络设计策略扩大了生物基弹性体在智能可穿戴纺织品、柔性电子设备和生物医学应用中的潜力,从而推动了可持续高性能聚合物的发展。
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来源期刊
CiteScore
26.60
自引率
6.60%
发文量
3549
审稿时长
1.5 months
期刊介绍: Angewandte Chemie, a journal of the German Chemical Society (GDCh), maintains a leading position among scholarly journals in general chemistry with an impressive Impact Factor of 16.6 (2022 Journal Citation Reports, Clarivate, 2023). Published weekly in a reader-friendly format, it features new articles almost every day. Established in 1887, Angewandte Chemie is a prominent chemistry journal, offering a dynamic blend of Review-type articles, Highlights, Communications, and Research Articles on a weekly basis, making it unique in the field.
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