自愈水凝胶
泊洛沙姆
材料科学
生物相容性
共聚物
光致聚合物
丙烯酸
胶束
化学工程
磺酸盐
3D打印
粘度
聚合物
纳米技术
高分子化学
复合材料
化学
水溶液
有机化学
聚合
工程类
冶金
钠
作者
Kusuma Betha Cahaya Imani,Ara Jo,Gyeong Min Choi,Beogyeong Kim,Jin Woong Chung,Heon Sang Lee,Jinhwan Yoon
标识
DOI:10.1002/marc.202100579
摘要
High-resolution 3D-printable hydrogels with high mechanical strength and biocompatibility are in great demand because of their potential applications in numerous fields. In this study, a material system comprising Pluronic F-127 dimethacrylate (FDMA) is developed to function as a direct ink writing (DIW) hydrogel for 3D printing. FDMA is a triblock copolymer that transforms into micelles at elevated temperatures. The transformation increases the viscosity of FDMA and preserves its structure during DIW 3D printing, whereupon the printed structure is solidified through photopolymerization. Because of this viscosity shift, various functionalities can be incorporated through the addition of other materials in the solution state. Acrylic acid is incorporated into the pregel solution to enhance the mechanical strength, because the carboxylate group of poly(acrylic acid) ionically crosslinks with Fe3+ , increasing the toughness of the DIW hydrogel 37 times to 2.46 MJ m-3 . Tough conductive hydrogels are also 3D printed by homogenizing poly(3,4-ethylenedioxythiophene) polystyrene sulfonate into the pregel solution. Furthermore, the FDMA platform developed herein uses DIW, which facilitates multicartridges 3D printing, and because all the materials included are biocompatible, the platform may be used to fabricate complex structures for biological applications.
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