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Versatile Surface Functionalization of Metal-Organic Frameworks through Direct Metal Coordination with a Phenolic Lipid Enables Diverse Applications

机译:通过直接金属与酚类脂质的配位,金属有机骨架的多功能表面功能化可实现多种应用

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摘要

A novel strategy for the versatile functionalization of the external surface of metal-organic frameworks (MOFs) has been developed based on the direct coordination of a phenolic-inspired lipid molecule DPGG (1,2-dipalmitoyl-sn-glycero-3-galloyl) with metal nodes/sites surrounding MOF surface. X-ray diffraction and Argon sorption analysis prove that the modified MOF particles retain their structural integrity and porosity after surface modification. Density functional theory calculations reveal that strong chelation strength between the metal sites and the galloyl head group of DPGG is the basic prerequisite for successful coating. Due to the pH-responsive nature of metal-phenol complexation, the modification process is reversible by simple washing in weak acidic water, showing an excellent regeneration ability for water-stable MOFs. Moreover, the colloidal stability of the modified MOFs in the nonpolar solvent allows them to be further organized into 2 dimensional MOF or MOF/polymer monolayers by evaporation-induced interfacial assembly conducted on an air/water interface. Finally, the easy fusion of a second functional layer onto DPGG-modified MOF cores, enabled a series of MOF-based functional nanoarchitectures, such as MOFs encapsulated within hybrid supported lipid bilayers (so-called protocells), polyhedral core-shell structures, hybrid lipid-modified-plasmonic vesicles and multicomponent supraparticles with target functionalities, to be generated. for a wide range of applications.
机译:基于酚类脂分子DPGG(1,2-二棕榈酰-sn-甘油-3-galloyl)的直接配位,已开发出一种新颖的策略,可对金属有机框架(MOF)的外表面进行通用功能化。金属节点/位置围绕MOF表面。 X射线衍射和氩吸附分析证明,改性的MOF颗粒在表面改性后仍保持其结构完整性和孔隙率。密度泛函理论计算表明,金属位点与DPGG的没食子酰基头基之间的强螯合强度是成功涂覆的基本前提。由于金属-苯酚配合物的pH响应特性,修饰过程可通过在弱酸性水中进行简单洗涤即可逆转,对水稳定的MOF具有出色的再生能力。而且,改性的MOF在非极性溶剂中的胶体稳定性允许它们通过在空气/水界面上进行的蒸发诱导界面组装而进一步组织成二维MOF或MOF /聚合物单层。最后,将第二功能层轻松融合到DPGG修饰的MOF核心上,可以实现一系列基于MOF的功能纳米体系结构,例如封装在混合支持的脂质双层(所谓的原生细胞),多面体核-壳结构,混合体中的MOF脂质修饰的等离子囊泡和具有目标功能的多组分超颗粒。适用于广泛的应用。

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