材料科学
自愈
超分子化学
韧性
生物相容性
中间相
液晶
纳米复合材料
纳米技术
复合材料
晶体结构
光电子学
结晶学
冶金
化学
替代医学
病理
医学
作者
Zhuojun Meng,Qing Liu,Yi Zhang,Jing Sun,Chenjing Yang,Hongyan Li,Mark Loznik,Robert Göstl,Dong Chen,Fan Wang,Noel A. Clark,Hongjie Zhang,Andreas Herrmann,Kai Liu
标识
DOI:10.1002/adma.202106208
摘要
DNA-based gels are attractive materials as they allow intuitive rational design, respond to external physicochemical stimuli, and show great potential for biomedical applications. However, their relatively poor mechanical properties currently limit their technological application considerably as the latter requires mechanical integrity and tunability. With this work, a DNA organogel is reported that gels through supramolecular interactions, which induce mesophase ordering, and that exhibits exceptional stretchability, deformability, plasticity, and biocompatibility. Moreover, the nature of the supramolecular bond enables complete self-healing within 3 s. Most importantly, the DNA-based liquid crystalline organogels exhibit impressive ultimate tensile strengths above 1 MPa, stiffness higher than 20 MPa, and toughness up to 18 MJ m-3 , rendering these materials the strongest among reported DNA networks. In addition, the facile access is demonstrated to composite DNA materials by blending magnetic nanoparticles with the organogel matrix giving access to magnetic field induced actuation. It is believed that these findings contribute significantly to the advancement of DNA gels for their use in smart materials and biomedical applications.
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