- 付俊 教授
- 中山大學(xué)材料科學(xué)與工程學(xué)院
- 網(wǎng)址: fujun.polymer.cn 訪問量:777707
- Journal of Polymer Science
- 中山大學(xué)付俊教授團(tuán)隊主頁
- 付俊教授團(tuán)隊誠聘研究員,副研究員,博士后
- 中國聚合物網(wǎng)
- 中國流變網(wǎng)
- 中國化學(xué)儀器網(wǎng)
- 化學(xué)化工論壇
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關(guān)鍵字:Carbon Fiber, Anisotropy, Self-sensing, Actuator
論文來源:期刊
具體來源:Chemical Engineering Journal
發(fā)表時間:2023年
Abstract
Organisms in nature, from plants, insects to mammals, have anisotropic and regularly arranged tissue structures, which are key to rapid and precise response to environmental stimuli. In this study, nature-inspired anisotropic hydrogel actuators are fabricated by 4D printing thermo-responsive composites of short carbon fibers (SCFs) and poly(N-isopropylacrylamide) (PNIPAM). The SCFs could be well aligned and programmed in hydrogel matrix, resulting in diverse precisely controlled anisotropic structures. The intrinsic anisotropy causes unbalanced swelling and shrinking upon thermo-stimulation, leading to reversible biomimetic shape morphing. Finite element analysis (FEA) simulations are used to estimate the internal anisotropic stress distribution and structure evolution. Biomimetic anisotropic butterfly-like, flytrap-like and starfish-like hydrogel actuators are fabricated by 4D printing. On the other hand, the anisotropic SCFs/PNIPAM hydrogels are conductive and could be used as wearable strain sensors with high sensitivity. The conductive anisotropic hydrogels can generate sensing signals when they are motivated by temperature changes. This self-monitoring soft actuator is promising for the development of soft robots with stimulation-sensing-actuation feedback loop, which has broad application prospects in artificial intelligent devices.
https://www.sciencedirect.com/science/article/pii/S138589472304175X?dgcid=author