材料科学
自愈水凝胶
导电体
佩多:嘘
聚合物
3D打印
导电聚合物
复合材料
制作
墨水池
生物相容性材料
3d打印
纳米技术
高分子化学
生物医学工程
图层(电子)
工程类
病理
替代医学
医学
作者
Ji Liu,James Garcia,Liam M. Leahy,Rijian Song,Daragh Mullarkey,Ban Fei,Adrian Dervan,I. V. Shvets,Plamen Stamenov,Wenxin Wang,Fergal J. O’Brien,Jonathan N. Coleman,Valeria Nicolosi
标识
DOI:10.1002/adfm.202214196
摘要
Abstract Functional conductive hydrogels are widely used in various application scenarios, such as artificial skin, cell scaffolds, and implantable bioelectronics. However, their novel designs and technological innovations are severely hampered by traditional manufacturing approaches. Direct ink writing (DIW) is considered a viable industrial‐production 3D‐printing technology for the custom production of hydrogels according to the intended applications. Unfortunately, creating functional conductive hydrogels by DIW has long been plagued by complicated ink formulation and printing processes. In this study, a highly 3D printable poly(3,4‐ethylenedioxythiophene):polystyrene sulfonate (PEDOT:PSS)‐based ink made from fully commercially accessible raw materials is demonstrated. It is shown that complex structures can be directly printed with this ink and then precisely converted into high‐performance hydrogels via a post‐printing freeze–thawing treatment. The 3D‐printed hydrogel exhibits high electrical conductivity of ≈2000 S m −1 , outstanding elasticity, high stability and durability in water, electromagnetic interference shielding, and sensing capabilities. Moreover, the hydrogel is biocompatible, showing great potential for implantable and tissue engineering applications. With significant advantages, the fabrication strategy is expected to open up a new route to create multifunctional hydrogels with custom features, and can bring new opportunities to broaden the applications of hydrogel materials.
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