Tang Ning, Jiang Yujia, Wei Kailun, Zheng Zhiran, Zhang Hao, Hu Jun
Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, North Third Ring Road 15, Chaoyang District, Beijing, 100029, China.
Department of Mechanical Engineering, Tsinghua University, Shuangqing Road 30, Haidian District, Beijing, 100084, China.
Adv Mater. 2024 Feb;36(6):e2309576. doi: 10.1002/adma.202309576. Epub 2023 Dec 6.
Gel materials are appealing due to their diverse applications in biomedicine, soft electronics, sensors, and actuators. Nevertheless, the existing synthetic gels are often plagued by feeble network structures and inherent defects associated with solvents, which compromise their mechanical load-bearing capacity and cast persistent doubts about their reliability. Herein, combined with attractive deep eutectic solvent (DES), a stepwise-enhanced strategy is presented to fabricate ultrarobust eutectogels. It focuses on the continuous modulation and optimization of polymer networks through complementary annealing and solvent exchange processes, which drives a progressive increase in both quantity and mass of the interconnected polymer chains at microscopic scale, hence contributing to the evolutionary enhancement of network structure. The resultant eutectogel exhibits superb mechanical properties, including record-breaking strength (31.8 MPa), toughness (76.0 MJ m ), and Young's modulus (25.6 MPa), together with exceptional resistance ability to tear and crack propagation. Moreover, this eutectogel is able to be further programmed through photolithography to in situ create patterned eutectogel for imparting specific functionalities. Enhanced by its broad applicability to various DES combinations, this stepwise-enhanced strategy is poised to serve as a crucial template and methodology for the future development of robust gels.
凝胶材料因其在生物医学、柔性电子、传感器和致动器等领域的广泛应用而备受关注。然而,现有的合成凝胶常常受到薄弱网络结构以及与溶剂相关的固有缺陷的困扰,这削弱了它们的机械承载能力,并对其可靠性产生了持续的质疑。在此,结合具有吸引力的深共熔溶剂(DES),提出了一种逐步增强策略来制备超坚固的共熔凝胶。该策略通过互补退火和溶剂交换过程,专注于聚合物网络的连续调制和优化,这促使微观尺度上相互连接的聚合物链的数量和质量逐步增加,从而有助于网络结构的逐步增强。所得的共熔凝胶表现出卓越的机械性能,包括破纪录的强度(31.8兆帕)、韧性(76.0兆焦/立方米)和杨氏模量(25.6兆帕),以及对撕裂和裂纹扩展的出色抵抗能力。此外,这种共熔凝胶能够通过光刻进一步编程,原位创建图案化的共熔凝胶以赋予特定功能。由于其对各种DES组合具有广泛的适用性,这种逐步增强策略有望成为未来开发坚固凝胶的关键模板和方法。