Yang Zhijun, Yang Yang, Liang Huan, He Enjian, Xu Hongtu, Liu Yawen, Wang Yixuan, Wei Yen, Ji Yan
The Key Laboratory of Bioorganic Phosphorus Chemistry & Chemical Biology (Ministry of Education), Department of Chemistry, Tsinghua University, Beijing, China.
Institute of Nuclear and New Energy Technology, Tsinghua University, Beijing, China.
Nat Commun. 2024 Nov 15;15(1):9902. doi: 10.1038/s41467-024-54233-x.
Liquid crystal networks (LCN) have attracted surging interest as extraordinary energy-dissipation materials owning to their unique dissipation mechanism based on the re-orientation of mesogens. However, how to integrate high Young's modulus, good dissipation efficiency and wide effective damping temperature range in energy-dissipation LCN remains a challenge. Here, we report a strategy to resolve this challenge by fabricating robust energy-dissipation liquid crystal semi-interpenetrating polymer network (LC-semi-IPN) consisting crystalline LC polymers (c-LCP). LC-semi-IPN demonstrates a superior synergistic performance in both mechanical and energy-dissipation properties, surpassing all currently reported LCNs. The crystallinity of c-LCP endows LC-semi-IPN with a substantial leap in Young's modulus (1800% higher than single network). The chain reptation of c-LCP also promotes an enhanced dissipation efficiency of LC-semi-IPN by 200%. Moreover, its effective damping temperature reaches up to 130 °C, which is the widest reported for LCNs. By leveraging its exceptional synergistic performance, LC-semi-IPN can be further utilized as a functional architected structure with exceptional energy-dissipation density and deformation-resistance.
液晶网络(LCN)因其基于液晶基元重新取向的独特耗散机制,作为特殊的能量耗散材料引起了人们的广泛关注。然而,如何在能量耗散型LCN中集成高杨氏模量、良好的耗散效率和宽的有效阻尼温度范围仍然是一个挑战。在此,我们报告了一种通过制备由结晶性液晶聚合物(c-LCP)组成的坚固的能量耗散液晶半互穿聚合物网络(LC-semi-IPN)来解决这一挑战的策略。LC-semi-IPN在机械性能和能量耗散性能方面均表现出卓越的协同性能,超过了目前报道的所有LCN。c-LCP的结晶性使LC-semi-IPN的杨氏模量大幅提高(比单一网络高1800%)。c-LCP的链爬行运动还使LC-semi-IPN的耗散效率提高了200%。此外,其有效阻尼温度高达130°C,这是LCN中报道的最宽范围。凭借其卓越的协同性能,LC-semi-IPN可进一步用作具有卓越能量耗散密度和抗变形能力的功能化结构。