Visualizing stepwise evolution of carbon hybridization from sp3 to sp2 and to sp
Abstract
Abstract Regulating carbon hybridization states lies at the heart of engineering carbon materials with tailored properties but orchestrating the sequential transition across three states has remained elusive. Here, we visiualize stepwise evolution in carbon hybridizations from sp³ to sp² and to sp states via dehydrogenation and elimination reactions of methylcyano-functionalized molecules on surfaces. Utilizing scanning probing microscopy, we distinguish three distinct carbon-carbon bond types within polymers induced by annealing at elevated temperatures. Density-functional-theory calculations unveil the pivotal role of the electron-withdrawing cyano group in activating neighboring methylene to form C(sp 3 )–C(sp 3 ) bonds, and in facilitating subsequent stepwise HCN eliminations to realize the transformation across three carbon-carbon bond types. We also demonstrate the applicability of this strategy on one-dimensional molecular wires and two-dimensional covalent organic framework on different substrates. Our work expands the scope of carbon hybridization evolution and serves as an advance in flexibly engineering carbon-material by employing cyanomethyl-substituted molecules.
Article Details
Authors (12)
Wei Xiong
Guang Zhang
College of Materials Science and Engineering and College of Mechanical Engineering
De-Liang Bao
Jianchen Lu
Faculty of Materials Science and Engineering
Lei Gao
Yusen Li
Key Laboratory for Special Functional Materials of Ministry of Education, School of Nanoscience and Materials Engineering
Hui Zhang
The Fourth Hospital of Hebei Medical University Shijiazhuang China
Zilin Ruan
Philipps-Universität Marburg, Fachbereich Chemie, Hans-Meerwein-Str. 4, 35032 Marburg, Germany
Zhenliang Hao
Hong-Jun Gao
Beijing National Center for Condensed Matter Physics and Institute of Physics
Long Chen
Department of Chemistry, Frontiers Science Center for New Organic Matter and State Key Laboratory of Advanced Chemical Power Sources, College of Chemistry
Jinming Cai
Faculty of Materials Science and Engineering