多孔性
超分子化学
化学
晶体工程
分子
共价键
化学工程
纳米技术
Crystal(编程语言)
多孔介质
结晶学
有机化学
材料科学
计算机科学
工程类
程序设计语言
作者
Michael J. Bojdys,Michael E. Briggs,James T. A. Jones,Dave J. Adams,Samantha Y. Chong,Marc Schmidtmann,Andrew I. Cooper
摘要
Control over pore size, shape, and connectivity in synthetic porous materials is important in applications such as separation, storage, and catalysis. Crystalline organic cage molecules can exhibit permanent porosity, but there are few synthetic methods to control the crystal packing and hence the pore connectivity. Typically, porosity is either 'intrinsic' (within the molecules) or 'extrinsic' (between the molecules)--but not both. We report a supramolecular approach to the assembly of porous organic cages which involves bulky directing groups that frustrate the crystal packing. This generates, in a synthetically designed fashion, additional 'extrinsic' porosity between the intrinsically porous cage units. One of the molecular crystals exhibits an apparent Brunauer-Emmett-Teller surface area of 854 m(2) g(-1), which is higher than that of unfunctionalized cages of the same dimensions. Moreover, connectivity between pores, and hence guest uptakes, can be modulated by the introduction of halogen bonding motifs in the cage modules. This suggests a broader approach to the supramolecular engineering of porosity in molecular organic crystals.
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