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首页> 外文期刊>Angewandte Chemie >Resolving Non-Specific and Specific Adhesive Interactions of Catechols at Solid/Liquid Interfaces at the Molecular Scale
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Resolving Non-Specific and Specific Adhesive Interactions of Catechols at Solid/Liquid Interfaces at the Molecular Scale

机译:在分子尺度处分在固体/液体界面处的儿茶酚的非特异性和特异性粘合剂相互作用

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摘要

The adhesive system of mussels evolved into a powerful and adaptive system with affinity to a wide range of surfaces. It is widely known that thereby 3,4-dihydroxyphenylalanine (Dopa) plays a central role. However underlying binding energies remain unknown at the single molecular scale. Here, we use single-molecule force spectroscopy to estimate binding energies of single catechols with a large range of opposing chemical functionalities. Our data demonstrate significant interactions of Dopa with all functionalities, yet most interactions fall within the medium-strong range of 1020 k(B)T. Only bidentate binding to TiO2 surfaces exhibits a higher binding energy of 29 k(B)T. Our data also demonstrate at the single-molecule level that oxidized Dopa and amines exhibit interaction energies in the range of covalent bonds, confirming the important role of Dopa for cross-linking in the bulk mussel adhesive. We anticipate that our approach and data will further advance the understanding of biologic and technologic adhesives.
机译:贻贝的粘合剂系统进化成强大而自适应的系统,具有与各种表面的亲和力。众所周知,3,4-二羟基苯甲丁(DOPA)起到核心作用。然而,基础结合能量在单个分子尺度保持未知。在此,我们使用单分子力光谱学用大量相反的化学功能估计单个儿茶酚的结合能量。我们的数据表现出DOPA与所有功能的显着相互作用,但大多数相互作用落在1020 k(b)t的中等强度范围内。仅双齿结合到TiO 2表面表现出较高的29k(b)t的结合能。我们的数据还证明了氧化DOPA和胺在共价键范围内氧化的单分子水平,确认DOPA在散装贻贝粘合剂中交联的重要作用。我们预计我们的方法和数据将进一步推进对生物和技术粘合剂的理解。

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