4.8 Article

Strong, Ultrafast, Reprogrammable Hydrogel Actuators with Muscle-Mimetic Aligned Fibrous Structures

期刊

CHEMISTRY OF MATERIALS
卷 33, 期 19, 页码 7818-7828

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.chemmater.1c02312

关键词

-

资金

  1. Australian Research Council Discovery Project Grant [DP190102992, FT190100188]
  2. Australian Research Council (ARC Laureate Fellowship) [FL160100139]
  3. Australian Research Council [DE210100852]
  4. Australian Research Council [FL160100139] Funding Source: Australian Research Council

向作者/读者索取更多资源

This study introduces a novel design strategy for hydrogel actuators, which combines thermoinduced microphase separation and mechanical alignment to achieve excellent mechanical properties and ultrafast actuation. The design enables shape reprogrammability and opens up new possibilities for real-world applications of smart hydrogels in soft robotics.
Hydrogel actuators displaying programmable shape transformations promise to be core components in future biomedical and soft robotic devices. However, current hydrogel actuators have shortcomings, including poor mechanical properties, slow response, and lack of shape reprogrammability, which limit their practical applications. Existing molecular designs offer limited efficiency in synergistically addressing these issues in a single hydrogel system. Herein, we propose a strategy to develop hydrogel actuators with muscle-mimetic aligned microfibrillar morphology, combining thermoinduced microphase separation and mechanical alignment. The key to our design is the introduction of metal-phenolic complexes, which not only induce irreversible sol-gel transition via the concentrated coordinate ions above lower critical solution temperature (LCST) but also fix the alignment of bundle network due to dynamic network rearrangement. Our design concept is observed to simultaneously achieve excellent mechanical properties (tensile strength approximate to 1.27 MPa, toughness approximate to 2.0 MJ m(-3)) and ultrafast actuation (40.1% thermal contraction as short as 1 s), which is a long-lasting challenge in the field. In addition, the dynamic hydrogels can be reprogrammed into spiral, helical, and biomimetic actuators. This work opens new opportunities to realize real-world applications for smart hydrogels as soft machines by fundamentally breaking the current property limit.

作者

我是这篇论文的作者
点击您的名字以认领此论文并将其添加到您的个人资料中。

评论

主要评分

4.8
评分不足

次要评分

新颖性
-
重要性
-
科学严谨性
-
评价这篇论文

推荐

暂无数据
暂无数据