Self-assembly and photoinduced fabrication of conductive nanographene wires on boron nitride.

Zhang, Xiaoxi; Gärisch, Fabian; Chen, Zongping; Hu, Yunbin; Wang, Zishu; Wang, Yan; Xie, Liming; Chen, Jianing et al. · Nat Commun · 2022

basic_science · Level V

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Abstract

Manufacturing molecule-based functional elements directly at device interfaces is a frontier in bottom-up materials engineering. A longstanding challenge in the field is the covalent stabilization of pre-assembled molecular architectures to afford nanodevice components. Here, we employ the controlled supramolecular self-assembly of anthracene derivatives on a hexagonal boron nitride sheet, to generate nanographene wires through photo-crosslinking and thermal annealing. Specifically, we demonstrate µm-long nanowires with an average width of 200 nm, electrical conductivities of 10<sup>6 </sup>S m<sup>-1</sup> and breakdown current densities of 10<sup>11 </sup>A m<sup>-2</sup>. Joint experiments and simulations reveal that hierarchical self-assembly promotes their formation and functional properties. Our approach demonstrates the feasibility of combined bottom-up supramolecular templating and top-down manufacturing protocols for graphene nanomaterials and interconnects, towards integrated carbon nanodevices.