Wang Chenlong, Gao Xiaohan, Zhang Feng, Hu Wanting, Gao Zhuxian, Zhang Yuqi, Ding Mingyu, Liang Qionglin
MOE Key Laboratory of Bioorganic Phosphorus Chemistry & Chemical Biology, Beijing Key Lab of Microanalytical Methods & Instrumentation, Department of Chemistry, Center for Synthetic and Systems Biology, Tsinghua University, Beijing, 100084, P. R. China.
School of Medicine and Department of Neurosurgery, Yuquan Hospital, School of Clinical Medicine, Tsinghua University, Beijing, 100084, P. R. China.
Small. 2022 May;18(21):e2200336. doi: 10.1002/smll.202200336. Epub 2022 Apr 23.
Adhesion to many kinds of surfaces, including biological tissues, is important in many fields but has been proved to be extremely challenging. Furthermore, peeling from strong adhesion is needed in many conditions, but is sometimes painful. Herein, a mussel inspired hydrogel is developed to achieve both strong adhesion and trigger-detachment. The former is actualized by electrostatic interactions, covalent bonds, and physical interpenetration, while the latter is triggered, on-demand, through combining a thixotropic supramolecular network and polymer double network. The results of the experiments show that the hydrogel can adhere to various material surfaces and tissues. Moreover, triggered by shear force, non-covalent interactions of the supramolecular network are destroyed. This adhesion can be peeled easily. The possible mechanism involved is discussed and proved. This work will bring new insight into electronic engineering and tissue repair like skin care for premature infants and burn victims.
在包括生物组织在内的多种表面上实现粘附在许多领域都很重要,但已被证明极具挑战性。此外,在许多情况下需要从强粘附中剥离,但有时会很痛苦。在此,开发了一种受贻贝启发的水凝胶,以实现强粘附和触发分离。前者通过静电相互作用、共价键和物理互穿来实现,而后者则通过结合触变超分子网络和聚合物双网络按需触发。实验结果表明,该水凝胶可以粘附在各种材料表面和组织上。此外,在剪切力的触发下,超分子网络的非共价相互作用被破坏。这种粘附可以很容易地剥离。文中讨论并证明了可能涉及的机制。这项工作将为电子工程和组织修复(如早产儿和烧伤患者的皮肤护理)带来新的见解。