Yao Yanjin, He Enjian, Xu Hongtu, Liu Yawen, Wei Yen, Ji Yan
The Key Laboratory of Bioorganic Phosphorus Chemistry & Chemical Biology, Department of Chemistry, Tsinghua University, China.
Chung-Yuan Christian University, Chung-Li, 32023, Taiwan, China.
Mater Horiz. 2023 May 9;10(5):1795-1805. doi: 10.1039/d3mh00184a.
Liquid crystal vitrimers can be reprocessed, reshaped, welded, and healed due to exchange-reaction-enabled topology changes despite having fully covalently cross-linked network structures. Fabricating liquid crystal (LC) vitrimer actuators is invariably carried out above a characteristic temperature known as the topology freezing transition temperature (). The reason that all exchange-reaction-based operations must be performed above is because the exchange reaction is insignificant below . Here we find that LC vitrimers can be reshaped at temperatures below the measured , whereas non-LC vitrimers cannot. The work here not only makes it possible to create reprogrammable and stable LC vitrimer actuators at low temperatures but also reminds us that both our measurement and understanding of the need further attention to facilitate the use of vitrimers in different areas.
尽管液晶 Vitrimer 具有完全共价交联的网络结构,但由于基于交换反应的拓扑结构变化,它们可以进行再加工、重塑、焊接和修复。制造液晶(LC)Vitrimer 致动器总是在一个称为拓扑冻结转变温度()的特征温度以上进行。所有基于交换反应的操作必须在 以上进行的原因是,在 以下交换反应不明显。在这里,我们发现 LC Vitrimer 可以在低于测量的 的温度下重塑,而非 LC Vitrimer 则不能。这里的工作不仅使得在低温下创建可重新编程且稳定的 LC Vitrimer 致动器成为可能,还提醒我们,我们对 的测量和理解都需要进一步关注,以促进 Vitrimer 在不同领域的应用。