Ab initio study of the mechanism of bottom-up synthesis of graphene nanoribbons
ORAL
Abstract
Graphene nanoribbons (GNRs) can be fabricated with atomic precision by using molecular precursors deposited on a metal substrate, and potentially form the basis for future molecular-scale electronics. The precursor molecules are first annealed to form a polymer, and further annealing at a higher temperature leads to the formation of a GNR. We systematically study the reaction pathways of this cyclodehydrogenation process, using density functional theory and the nudged elastic band method. We find that the Au substrate reduces the reaction barriers for key steps in the cyclodehydrogenation process: cyclization, hydrogen migration and desorption. Furthermore, our calculations explain recent experiments showing that an STM-tip can induce local polymer-to-GNR transition, which can be used to fabricate atomically precise heterojunctions: at a negative bias, the STM tip injects excess holes into the polymer HOMO state, lowering the energy barrier in agreement with Woodward-Hoffmann rules. At a positive bias, when excess electrons are injected into the LUMO state, the energy barrier is not significantly lowered and the transition is not observed.
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Authors
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Zhongcan Xiao
North Carolina State University
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Chuanxu Ma
Oak Ridge National Laboratory
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Honhai Zhang
Oak Ridge National Laboratory
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Liangbo Liang
Oak Ridge National Laboratory
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Jingsong Huang
Oak Ridge National Laboratory, Quantum Computing Institute, Oak Ridge National Laboratory
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Wenchang Lu
North Carolina State University, North Carolina State Univ
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Kunlun Hong
Center for Nanophase Materials Sciences, Oak Ridge National Laboratory, Oak Ridge, TN 37831, USA, Oak Ridge National Laboratory, ORNL, Oak Ridge National Lab
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An-Ping Li
Oak Ridge National Laboratory
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Jerzy Bernholc
North Carolina State University, North Carolina State Univ