材料科学
3D打印
各向异性
有限元法
耐久性
灵敏度(控制系统)
可穿戴技术
微观结构
纳米技术
可穿戴计算机
复合材料
计算机科学
电子工程
结构工程
光学
物理
工程类
嵌入式系统
作者
Jingqi Lu,Guoyin Zhu,Shaolong Wang,Chunjin Wu,Xinyu Qu,Xiaochen Dong,Huan Pang,Yizhou Zhang
出处
期刊:Small
[Wiley]
日期:2024-05-15
被引量:5
标识
DOI:10.1002/smll.202401565
摘要
Abstract Stretchable strain sensors play a crucial role in intelligent wearable systems, serving as the interface between humans and environment by translating mechanical strains into electrical signals. Traditional fiber strain sensors with intrinsic uniform axial strain distribution face challenges in achieving high sensitivity and anisotropy. Moreover, existing micro/nano‐structure designs often compromise stretchability and durability. To address these challenges, a novel approach of using 3D printing to fabricate MXene‐based flexible sensors with tunable micro and macrostructures. Poly(tetrafluoroethylene) (PTFE) as a pore‐inducing agent is added into 3D printable inks to achieve controllable microstructural modifications. In addition to microstructure tuning, 3D printing is employed for macrostructural design modifications, guided by finite element modeling (FEM) simulations. As a result, the 3D printed sensors exhibit heightened sensitivity and anisotropy, making them suitable for tracking static and dynamic displacement changes. The proposed approach presents an efficient and economically viable solution for standardized large‐scale production of advanced wire strain sensors.
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