State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing, 100029, China.
Beijing Engineering Research Center of Advanced Elastomers, Beijing University of Chemical Technology, Beijing, 100029, China.
Macromol Rapid Commun. 2022 Nov;43(21):e2200486. doi: 10.1002/marc.202200486. Epub 2022 Sep 16.
Rubber composites make an important contribution to eliminating vibration and noise owing to their unique viscoelasticity. However, it is important to find alternative bio-based products with high damping properties owing to the shortage of petrochemical resources and poor performance. The ability to self-heal is an additional characteristic that is highly desirable because it can further increase the service life and safety of such products. In this study, a bio-based polylactic acid thermoplastic polyurethane (PLA-TPU) and its composites (PLA-TPU/AO-80) are synthesized. The reversible sacrificial hydrogen bonds in the composites increase the peak value of the loss factor (tan δ ) from 0.87 to 2.12 with a high energy dissipation efficiency of 99% at 50% strain. After being heated for 15 min, the healed sample recovers 81.98% of its comprehensive mechanical properties due to the reorganization of the hydrogen bonds. Its tensile strength remains at 93.4% after recycling five times. Moreover, its shape memory properties show a response temperature close to the human body temperature making it an ideal candidate for medical applications.
橡胶复合材料由于其独特的粘弹性,对消除振动和噪声有重要贡献。然而,由于石化资源短缺和性能不佳,寻找具有高阻尼性能的替代生物基产品很重要。自修复能力是另一个理想的特性,因为它可以进一步提高这些产品的使用寿命和安全性。本研究合成了一种生物基聚乳酸热塑性聚氨酯(PLA-TPU)及其复合材料(PLA-TPU/AO-80)。复合材料中可逆的牺牲氢键使损耗因子(tan δ)的峰值从 0.87 增加到 2.12,在 50%应变下具有 99%的高能量耗散效率。加热 15 分钟后,由于氢键的重新组合,愈合后的样品恢复了 81.98%的综合力学性能。其拉伸强度在循环使用五次后仍保持在 93.4%。此外,其形状记忆性能表现出接近人体温度的响应温度,使其成为医学应用的理想候选材料。