化学
堆积
有机电子学
共价键
离域电子
结晶学
平面度测试
纳米结构
接受者
亚胺
并五苯
化学物理
纳米技术
有机化学
催化作用
电极
晶体管
电压
物理化学
物理
薄膜晶体管
材料科学
量子力学
凝聚态物理
作者
Florian Auras,Laura Ascherl,Amir H. Hakimioun,Johannes T. Margraf,Fabian C. Hanusch,Stephan Reuter,Derya Bessinger,Markus Döblinger,Christina Hettstedt,Konstantin Karaghiosoff,Simon A. Herbert,Paul Knochel,Timothy Clark,Thomas Bein
摘要
Covalent organic frameworks (COFs), formed by reversible condensation of rigid organic building blocks, are crystalline and porous materials of great potential for catalysis and organic electronics. Particularly with a view of organic electronics, achieving a maximum degree of crystallinity and large domain sizes while allowing for a tightly π-stacked topology would be highly desirable. We present a design concept that uses the 3D geometry of the building blocks to generate a lattice of uniquely defined docking sites for the attachment of consecutive layers, thus allowing us to achieve a greatly improved degree of order within a given average number of attachment and detachment cycles during COF growth. Synchronization of the molecular geometry across several hundred nanometers promotes the growth of highly crystalline frameworks with unprecedented domain sizes. Spectroscopic data indicate considerable delocalization of excitations along the π-stacked columns and the feasibility of donor–acceptor excitations across the imine bonds. The frameworks developed in this study can serve as a blueprint for the design of a broad range of tailor-made 2D COFs with extended π-conjugated building blocks for applications in photocatalysis and optoelectronics.
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