纳米孔
材料科学
石墨烯
丝带
纳米技术
石墨烯纳米带
纳米结构
多孔性
多孔介质
共轭体系
带隙
相(物质)
化学工程
光电子学
聚合物
化学
复合材料
有机化学
工程类
作者
Wenhui Niu,Yubin Fu,Gianluca Serra,Kun Liu,Jörn Droste,Yeonju Lee,Zhitian Ling,Fugui Xu,José D. Cojal González,Andrea Lucotti,Jürgen P. Rabe,Michael Ryan Hansen,Wojciech Pisula,Paul W. M. Blom,Carlos‐Andres Palma,Matteo Tommasini,Yiyong Mai,Ji Ma,Xinliang Feng
标识
DOI:10.1002/anie.202305737
摘要
The incorporation of nanopores into graphene nanostructures has been demonstrated as an efficient tool in tuning their band gaps and electronic structures. However, precisely embedding the uniform nanopores into graphene nanoribbons (GNRs) at the atomic level remains underdeveloped especially for in-solution synthesis due to the lack of efficient synthetic strategies. Herein we report the first case of solution-synthesized porous GNR (pGNR) with a fully conjugated backbone via the efficient Scholl reaction of tailor-made polyphenylene precursor (P1) bearing pre-installed hexagonal nanopores. The resultant pGNR features periodic subnanometer pores with a uniform diameter of 0.6 nm and an adjacent-pores-distance of 1.7 nm. To solidify our design strategy, two porous model compounds (1 a, 1 b) containing the same pore size as the shortcuts of pGNR, are successfully synthesized. The chemical structure and photophysical properties of pGNR are investigated by various spectroscopic analyses. Notably, the embedded periodic nanopores largely reduce the π-conjugation degree and alleviate the inter-ribbon π-π interactions, compared to the nonporous GNRs with similar widths, affording pGNR with a notably enlarged band gap and enhanced liquid-phase processability.
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