液晶
材料科学
弹性体
转化(遗传学)
纳米技术
液晶
复合材料
化学工程
光电子学
化学
生物化学
工程类
基因
作者
Dongxiao Li,Yuxuan Sun,Xingjian Li,Xingxiang Li,Zhengqing Zhu,Boxi Sun,Shutong Nong,Jiyang Wu,Tingrui Pan,Weihua Li,Shiwu Zhang,Mujun Li
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-02-13
标识
DOI:10.1021/acsnano.4c15521
摘要
Liquid crystal elastomers with near-ambient temperature-responsiveness (NAT-LCEs) have been extensively studied for building biocompatible, low-power consumption devices and robotics. However, conventional manufacturing methods face limitations in programmability (e.g., molding) or low nematic order (e.g., DIW printing). Here, a hybrid cooling strategy is proposed for programmable three-dimensional (3D) printing of NAT-LCEs with enhanced nematic order, intricate shape forming, and morphing capability. By integrating a low-temperature nozzle and a cooling platform into a 3D printer, the resulting temperature field synergistically facilitates mesogen alignment during extrusion and disruption-free ultraviolet (UV) cross-linking. This method achieves a nematic order 3000% higher than NAT-LCEs fabricated using traditional room temperature 3D printing. Enabled by shifting of transition temperature during hybrid cooling printing, printed sheets spontaneously turn into 3D structures after release from the platform, exhibiting bidirectional deformation with heating and cooling. By adjusting the nozzle and plate temperatures, NAT-LCEs with graded properties can be fabricated for intricate shape morphing. A wristband system with enhanced heart rate monitoring is also developed based on 3D-printed NAT-LCE. Our method facilitates developments in soft robotics, biomedical devices, and wearable electronics.
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