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通过链增长聚合制备的精确石墨烯纳米带异质结

Precision Graphene Nanoribbon Heterojunctions by Chain-Growth Polymerization.

作者信息

Zhang Jin-Jiang, Liu Kun, Xiao Yao, Yu Xiuling, Huang Li, Gao Hong-Jun, Ma Ji, Feng Xinliang

机构信息

Max Planck Institute of Microstructure Physics, Weinberg 2, 06120, Halle, Germany.

Center for Advancing Electronics Dresden (cfaed) & Faculty of Chemistry and Food Chemistry, Technische Universität Dresden, Mommsenstrasse 4, 01062, Dresden, Germany.

出版信息

Angew Chem Int Ed Engl. 2023 Oct 9;62(41):e202310880. doi: 10.1002/anie.202310880. Epub 2023 Sep 6.

Abstract

Graphene nanoribbons (GNRs) are considered promising candidates for next-generation nanoelectronics. In particular, GNR heterojunctions have received considerable attention due to their exotic topological electronic phases at the heterointerface. However, strategies for their precision synthesis remain at a nascent stage. Here, we report a novel chain-growth polymerization strategy that allows for constructing GNR heterojunction with N=9 armchair and chevron GNRs segments (9-AGNR/cGNR). The synthesis involves a controlled Suzuki-Miyaura catalyst-transfer polymerization (SCTP) between 2-(6'-bromo-4,4''-ditetradecyl-[1,1':2',1''-terphenyl]-3'-yl) boronic ester (M1) and 2-(7-bromo-9,12-diphenyl-10,11-bis(4-tetradecylphenyl)-triphenylene-2-yl) boronic ester (M2), followed by the Scholl reaction of the obtained block copolymer (poly-M1/M2) with controlled M (18 kDa) and narrow Đ (1.45). NMR and SEC analysis of poly-M1/M2 confirm the successful block copolymerization. The solution-mediated cyclodehydrogenation of poly-M1/M2 toward 9-AGNR/cGNR is unambiguously validated by FT-IR, Raman, and UV/Vis spectroscopies. Moreover, we also demonstrate the on-surface formation of pristine 9-AGNR/cGNR from the unsubstituted copolymer precursor, which is unambiguously characterized by scanning tunneling microscopy (STM).

摘要

石墨烯纳米带(GNRs)被认为是下一代纳米电子学的有前途的候选材料。特别是,GNR异质结因其在异质界面处的奇异拓扑电子相而受到了广泛关注。然而,其精确合成策略仍处于起步阶段。在这里,我们报告了一种新颖的链增长聚合策略,该策略允许构建具有N = 9扶手椅和人字形GNR段(9-AGNR/cGNR)的GNR异质结。合成过程涉及2-(6'-溴-4,4''-二四癸基-[1,1':2',1''-三联苯]-3'-基)硼酸酯(M1)和2-(7-溴-9,12-二苯基-10,11-双(4-十四烷基苯基)-三亚苯-2-基)硼酸酯(M2)之间的可控铃木-宫浦催化剂转移聚合(SCTP),然后将所得的嵌段共聚物(聚-M1/M2)与可控分子量M(18 kDa)和窄分散度Đ(1.45)进行肖尔反应。聚-M1/M2的NMR和SEC分析证实了嵌段共聚的成功。通过FT-IR、拉曼和UV/Vis光谱明确验证了聚-M1/M2向9-AGNR/cGNR的溶液介导环脱氢反应。此外,我们还展示了由未取代的共聚物前体在表面上形成原始的9-AGNR/cGNR,通过扫描隧道显微镜(STM)对其进行了明确表征。

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