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Self-cleaning MOF: realization of extreme water repellence in coordination driven self-assembled nanostructures

机译:自清洁MOF:在配位驱动的自组装纳米结构中实现极高的疏水性

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摘要

Bio-inspired self-cleaning surfaces have found industrial applications in oil–water separation, stain resistant textiles, anti-biofouling paints in ships etc. Interestingly, self-cleaning metal–organic framework (MOF) materials having high water contact angles and corrosion resistance have not been realized so far. To address this issue, we have used the fundamentals of self-assembly to expose hydrophobic alkyl chains on a MOF surface. This decreases the surface free energy and hence increases hydrophobicity. Coordination directed self-assembly of dialkoxyoctadecyl-oligo-(p-phenyleneethynylene)dicarboxylate (>OPE-C18) with ZnII in a DMF/H2O mixture leads to a three dimensional supramolecular porous framework {Zn(OPE-C18)·2H2O} (>NMOF-1) with nanobelt morphology. Inherently superhydrophobic and self-cleaning >NMOF-1 has high thermal and chemical stability. The periodic arrangement of 1D Zn-OPE-C18 chains with octadecyl alkyl chains projecting outward reduces the surface free energy leading to superhydrophobicity in >NMOF-1 (contact angle: 160–162°). The hierarchical surface structure thus generated, enables >NMOF-1 to mimic the lotus leaf in its self-cleaning property with an unprecedented tilt angle of 2°. Additionally, superhydrophobicity remains intact over a wide pH range (1–9) and under high ionic concentrations. We believe that such a development in this field will herald a new class of materials capable of water repellent applications.
机译:受生物启发的自清洁表面已在油水分离,抗污纺织品,船上防污涂料等方面获得了工业应用。有趣的是,具有高水接触角和耐腐蚀性的自清洁金属有机框架(MOF)材料到目前为止尚未实现。为解决此问题,我们使用了自组装的基本原理来暴露MOF表面上的疏水烷基链。这减少了表面自由能,因此增加了疏水性。在DMF / H2O混合物中二烷氧基十八烷基-寡-(对亚苯基乙炔基)二羧酸(> OPE-C18 )与Zn II 的配位定向自组装导致三维超分子纳米带形态的多孔骨架{Zn(OPE-C18)·2H2O}(> NMOF-1 )。本身具有超疏水性和自清洁性的> NMOF-1 具有很高的热稳定性和化学稳定性。一维Zn-OPE-C18链与十八烷基烷基链向外突出的周期性排列减少了表面自由能,导致> NMOF-1 中的超疏水性(接触角:160–162°)。这样生成的分层表面结构使> NMOF-1 能够以前所未有的2°倾斜角模仿荷叶的自洁特性。此外,超疏水性在较宽的pH范围(1–9)和高离子浓度下仍保持完整。我们相信,这一领域的发展将预示着能够防水应用的新型材料。

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