Direct Synthesis of Hexa-peri-hexabenzocoronene on Au(111) Surfaces: Insights into Intramolecular Dehydrocyclization and Molecular Modification Strategies
Creators
Abstract
Polycyclic aromatic hydrocarbons (PAHs) are widely used in materials science, optoelectronic devices, and supramolecular chemistry because of their unique extended π-conjugated structures. Among numerous PAHs, hexa-peri-hexabenzocoronene (HBC) is a prominent representative of the all-benzene structural building blocks. The synthesis of HBC using hexaphenylbenzene (HPB) is considered the most direct approach, requiring only intramolecular dehydrocyclization. In this study, we calculated the complete reaction pathway for the formation of HBC molecules from HPB molecules on the Au(111) surface. Our study revealed that HBC is formed by sequential phenyl coupling reactions with a maximum energy barrier of 1.86 eV. We also obtained the surface properties of the HPB and HBC molecules, including their charge distributions, migration barriers, and molecular aromaticity. Furthermore, using a 1,2-dibenzobenzene (DBB) model, we introduced para-position electron donor/withdrawing groups to regulate the phenyl coupling reaction. The results showed that this strategy effectively reduces the reaction barrier with electron-donating groups having a more pronounced effect. Our research reveals the influence of functional groups on molecular electronic properties and provides theoretical insights for the design of precursor molecules and surface synthesis strategies.
Acknowledgement
We gratefully acknowledge the generous financial support from the National Natural Science Foundation of China (Grant 51821002 and 22161132026), the Suzhou Key Laboratory of Surface and Interface Intelligent Matter (Grant SZS2022011), the Collaborative Innovation Center of Suzhou Nano Science & Technology, the Priority Academic Program Development of Jiangsu Higher Education Institutions (PAPD), and the 111 project. W.A.G. thanks the U.S. National Science Foundation (CBET 2311117) for support.
Copyright and License
Copyright © 2025 American Chemical Society
Supplemental Material
The Supporting Information is available free of charge at https://pubs.acs.org/doi/10.1021/acscatal.4c06226.
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The reaction pathway and energy spectrum of the molecular transformations from HPB to HBC; the molecular structures and modification positions of selected electron-donating/withdrawing groups; the effects of meta- and para-position amino/nitro group modifications on biphenyl coupling; and the orbital energy levels of the products after dehydrocyclization (PDF)
 
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Additional details
Funding
- National Natural Science Foundation of China
 - 22161132026
 - National Natural Science Foundation of China
 - 51821002
 - Priority Academic Program Development of Jiangsu Higher Education Institutions
 - Suzhou Key Laboratory of Surface and Interface Intelligent Matter
 - SZS2022011
 - National Science Foundation
 - CBET 2311117
 
Dates
- Available
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      2025-02-18Published online