Department of Chemistry, University of South Florida, 4202 East Fowler Avenue (CHE 205), Tampa, Florida 33620, USA.
J Am Chem Soc. 2011 Sep 14;133(36):14204-7. doi: 10.1021/ja205658j. Epub 2011 Aug 19.
A new blueprint network for the design and synthesis of porous, functional 3D metal-organic frameworks (MOFs) has been identified, namely, the tbo net. Accordingly, tbo-MOFs based on this unique (3,4)-connected net can be exclusively constructed utilizing a combination of well-known and readily targeted M(R-BDC) MOF layers [i.e., supermolecular building layers (SBLs)] based on the edge-transitive 4,4 square lattice (sql) (i.e., 2D four-building units) and a novel pillaring strategy based on four proximal isophthalate ligands from neighboring SBL membered rings (i.e., two pairs from each layer) covalently cross-linked through an organic quadrangular core (e.g., tetrasubstituted benzene). Our strategy permits the rational design and synthesis of isoreticular structures, functionalized and/or expanded, that possess extra-large nanocapsule-like cages, high porosity, and potential for gas separation and storage, among others. Thus, tbo-MOF serves as an archetypal tunable, isoreticular MOF platform for targeting desired applications.
一种新的用于设计和合成多孔功能 3D 金属有机骨架(MOFs)的蓝图网络已被确定,即 tbo 网络。相应地,基于这种独特的(3,4)连接网络的 tbo-MOF 可以仅通过利用众所周知且易于靶向的[M(R-BDC)](n)MOF 层(即超分子构建层(SBL))的组合来专门构建,这些 SBL 基于具有平移对称性的 4,4 正方形晶格(sql)(即二维四构建单元)和一种新颖的基于相邻 SBL 成员环上的四个近位间苯二甲酸配体的支化策略(即,每个层两对)通过有机四角核(例如四取代苯)共价交联。我们的策略允许对具有大纳米胶囊状笼、高孔隙率以及潜在的气体分离和储存等功能的同构结构进行合理的设计和合成。因此,tbo-MOF 作为典型的可调谐、同构 MOF 平台,可针对预期的应用进行靶向设计。