Dong Min, Han Ying, Hao Xing Peng, Yu Hai Chao, Yin Jun, Du Miao, Zheng Qiang, Wu Zi Liang
Ministry of Education Key Laboratory of Macromolecular Synthesis and Functionalization, Department of Polymer Science and Engineering, Zhejiang University, Hangzhou, 310027, China.
The State Key Laboratory of Fluid Power and Mechatronic Systems, Key Laboratory of 3D Printing Process and Equipment of Zhejiang Province, School of Mechanical Engineering, Zhejiang University, Hangzhou, 310027, China.
Adv Mater. 2022 Aug;34(34):e2204333. doi: 10.1002/adma.202204333. Epub 2022 Jul 17.
Processing tough hydrogels into sophisticated architectures is crucial for their applications as structural elements. However, Digital Light Processing (DLP) printing of tough hydrogels is challenging because of the low-speed gelation and toughening process. Described here is a simple yet versatile system suitable for DLP printing to form tough hydrogel architectures. The aqueous precursor consists of commercial photoinitiator, acrylic acid, and zirconium ion (Zr ), readily forming tough metallo-supramolecular hydrogel under digital light because of in situ formation of carboxyl-Zr coordination complexes. The high-stiffness and antiswelling properties of as-printed gel enable high-efficiency printing to form high-fidelity constructs. Furthermore, swelling-induced morphing of the gel is also achieved by encoding structure gradients during the printing with grayscale digital light. Mechanical properties of the printed hydrogels are further improved after incubation in water due to the variation of local pH and rearrangement of coordination complex. The swelling-enhanced stiffness affords the printed hydrogel with shape fixation ability after manual deformations, and thereby provides an additional avenue to form more complex configurations. These printed hydrogels are used to devise an impact-absorption element or a high-sensitivity pressure sensor as proof-of-concept examples. This work should merit engineering of other tough gels and extend their scope of applications in diverse fields.
将坚韧水凝胶加工成复杂结构对于其作为结构元件的应用至关重要。然而,由于低速凝胶化和增韧过程,坚韧水凝胶的数字光处理(DLP)打印具有挑战性。本文描述了一种简单而通用的系统,适用于DLP打印以形成坚韧水凝胶结构。水性前体由商业光引发剂、丙烯酸和锆离子(Zr)组成,由于原位形成羧基-Zr配位络合物,在数字光下容易形成坚韧的金属超分子水凝胶。打印凝胶的高刚度和抗溶胀性能使得能够高效打印以形成高保真结构。此外,通过在打印过程中用灰度数字光编码结构梯度,还可以实现凝胶的溶胀诱导变形。由于局部pH值的变化和配位络合物的重排,打印水凝胶在水中孵育后机械性能进一步提高。溶胀增强的刚度使打印水凝胶在手动变形后具有形状固定能力,从而提供了形成更复杂构型的额外途径。这些打印水凝胶被用于设计一种冲击吸收元件或高灵敏度压力传感器作为概念验证示例。这项工作应该有助于其他坚韧凝胶的工程设计,并扩展它们在不同领域的应用范围。