材料科学
弹性体
软机器人
硅酮
3D打印
墨水池
复合材料
纳米技术
可伸缩电子设备
数码产品
软质材料
固化(化学)
弹性聚硅酮类
流变学
机械工程
计算机科学
机器人
人工智能
电气工程
工程类
作者
Luyu Zhou,Qing Gao,Jianzhong Fu,Qian‐Yong Chen,Jia‐pei Zhu,Yuan Sun,Yong He
标识
DOI:10.1021/acsami.9b04873
摘要
3D printing of silicone elastomers with the direct ink writing (DIW) process has demonstrated great potential in areas as diverse as flexible electronics, medical devices, and soft robotics. However, most of current silicones are not printable because of their low viscosity and long curing time. The lack of systematic research on materials, devices, and processes during printing makes it a huge challenge to apply the DIW process more deeply and widely. In this report, aiming at the dilemmas in materials, devices, and processes, we proposed a comprehensive guide for printing highly stretchable silicone. Specifically, to improve the printability of silicone elastomers, nanosilica was added as a rheology modifier without sacrificing any stretching ability. To effectively control print speed and accuracy, a theoretical model was built and verified. With this strategy, silicone elastomers with different mechanical properties can all be printed and can realize infinite time and high speed printing (>25 mm/s) while maintaining accuracy. Here, super-stretchable silicone that can be stretched to 2000% was printed for the first time, and complex structures can be printed with high quality. For further demonstration, prosthetic nose, data glove capable of detecting fingers' movement, and artificial muscle that can lift objects were printed directly. We believe that this work could provide a guide for further work using the DIW process to print soft matters in a wide range of application scenarios.
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