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通过基质辅助直接转移的协同自下而上合成石墨烯纳米带。

Synergetic Bottom-Up Synthesis of Graphene Nanoribbons by Matrix-Assisted Direct Transfer.

机构信息

Department of Chemistry, University of California, Berkeley, California 94720, United States.

Department of Physics, University of California, Berkeley, California 94720, United States.

出版信息

J Am Chem Soc. 2021 Mar 24;143(11):4174-4178. doi: 10.1021/jacs.1c01355. Epub 2021 Mar 12.

Abstract

The scope of graphene nanoribbon (GNR) structures accessible through bottom-up approaches is defined by the intrinsic limitations of either all-on-surface or all-solution-based synthesis. Here, we report a hybrid bottom-up synthesis of GNRs based on a Matrix-Assisted Direct (MAD) transfer technique that successfully leverages technical advantages inherent to both solution-based and on-surface synthesis while sidestepping their drawbacks. Critical structural parameters tightly controlled in solution-based polymerization reactions can seamlessly be translated into the structure of the corresponding GNRs. The transformative potential of the synergetic bottom-up approaches facilitated by the MAD transfer techniques is highlighted by the synthesis of chevron-type GNRs (cGNRs) featuring narrow length distributions and a nitrogen core-doped armchair GNR (N-7-ANGR) that remains inaccessible using either a solution-based or an on-surface bottom-up approach alone.

摘要

通过自下而上的方法可获得的石墨烯纳米带(GNR)结构的范围受到表面合成或全溶液合成内在限制的限制。在这里,我们报告了一种基于基质辅助直接(MAD)转移技术的 GNR 的混合自下而上合成,该技术成功地利用了溶液和表面合成固有的技术优势,同时避免了它们的缺点。在溶液聚合反应中可严格控制的关键结构参数可无缝转化为相应 GNR 的结构。MAD 转移技术促进的协同自下而上方法的变革潜力通过合成具有窄长度分布的雪佛龙型 GNR(cGNR)和氮核掺杂的扶手椅 GNR(N-7-ANGR)得到了突出体现,这两种材料均无法通过溶液或表面合成方法单独获得。

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