Ambulo Cedric P, Tasmim Seelay, Wang Suitu, Abdelrahman Mustafa K, Zimmern Philippe E, Ware Taylor H
Department of Bioengineering, The University of Texas at Dallas, Richardson, Texas 75080, USA.
Department of Urology, University of Texas Southwestern Medical Center, Dallas, Texas 75390, USA.
J Appl Phys. 2020 Oct 14;128(14):140901. doi: 10.1063/5.0021143. Epub 2020 Oct 8.
Liquid crystal elastomers (LCEs) are a class of stimuli-responsive polymers that undergo reversible shape-change in response to environmental changes. The shape change of LCEs can be programmed during processing by orienting the liquid crystal phase prior to crosslinking. The suite of processing techniques that has been developed has resulted in a myriad of LCEs with different shape-changing behavior and mechanical properties. Aligning LCEs via mechanical straining yields large uniaxial actuators capable of a moderate force output. Magnetic fields are utilized to control the alignment within LCE microstructures. The generation of out-of-plane deformations such as bending, twisting, and coning is enabled by surface alignment techniques within thin films. 4D printing processes have emerged that enable the fabrication of centimeter-scale, 3D LCE structures with a complex alignment. The processing technique also determines, to a large extent, the potential applications of the LCE. For example, 4D printing enables the fabrication of LCE actuators capable of replicating the forces generated by human muscles. Employing surface alignment techniques, LCE films can be designed for use as coatings or as substrates for stretchable electronics. The growth of new processes and strategies opens and strengthens the path for LCEs to be applicable within biomedical device designs.
液晶弹性体(LCEs)是一类对环境变化做出响应而发生可逆形状变化的刺激响应性聚合物。LCEs的形状变化可以在加工过程中通过在交联之前使液晶相取向来进行编程。已开发的一系列加工技术已产生了无数具有不同形状变化行为和机械性能的LCEs。通过机械拉伸使LCEs取向可产生能够输出适度力的大型单轴致动器。利用磁场来控制LCE微观结构内的取向。薄膜内的表面取向技术能够产生诸如弯曲、扭曲和锥化等面外变形。已经出现了4D打印工艺,能够制造具有复杂取向的厘米级3D LCE结构。加工技术在很大程度上也决定了LCE的潜在应用。例如,4D打印能够制造能够复制人类肌肉产生的力的LCE致动器。采用表面取向技术,LCE薄膜可设计用作涂层或可拉伸电子产品的基板。新的工艺和策略的发展为LCEs在生物医学设备设计中的应用开辟并强化了道路。