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Cove-Edged Graphene Nanoribbons with Incorporation of Periodic Zigzag-Edge Segments.
Wang, Xu; Ma, Ji; Zheng, Wenhao; Osella, Silvio; Arisnabarreta, Nicolás; Droste, Jörn; Serra, Gianluca; Ivasenko, Oleksandr; Lucotti, Andrea; Beljonne, David; Bonn, Mischa; Liu, Xiangyang; Hansen, Michael Ryan; Tommasini, Matteo; De Feyter, Steven; Liu, Junzhi; Wang, Hai I; Feng, Xinliang.
Afiliação
  • Wang X; College of Polymer Science and Engineering, State Key Laboratory of Polymer Material and Engineering, Sichuan University, 610065 Chengdu, P.R. China.
  • Ma J; Centre for Advancing Electronics Dresden (cfaed) and Faculty of Chemistry and Food Chemistry, Technische Universität Dresden, 01062 Dresden, Germany.
  • Zheng W; Centre for Advancing Electronics Dresden (cfaed) and Faculty of Chemistry and Food Chemistry, Technische Universität Dresden, 01062 Dresden, Germany.
  • Osella S; Max Planck Institute for Polymer Research, Ackermannweg 10, 55128 Mainz, Germany.
  • Arisnabarreta N; Chemical and Biological Systems Simulation Lab, Centre of New Technologies, University of Warsaw, Banacha 2C, 02-097 Warsaw, Poland.
  • Droste J; Department of Chemistry, Division of Molecular Imaging and Photonics, KU Leuven, Celestijnenlaan 200F, 3001 Leuven, Belgium.
  • Serra G; Institute of Physical Chemistry, Westfal̈ische Wilhelms-Universitat Münster, Corrensstraße 28/30, D-48149 Münster, Germany.
  • Ivasenko O; Dipartimento di Chimica, Materiali ed Ingegneria Chimica "G. Natta", Politecnico di Milano, Piazza Leonardo da Vinci 32, 20133 Milano, Italy.
  • Lucotti A; Department of Chemistry, Division of Molecular Imaging and Photonics, KU Leuven, Celestijnenlaan 200F, 3001 Leuven, Belgium.
  • Beljonne D; Dipartimento di Chimica, Materiali ed Ingegneria Chimica "G. Natta", Politecnico di Milano, Piazza Leonardo da Vinci 32, 20133 Milano, Italy.
  • Bonn M; Laboratory for Chemistry of Novel Materials, Université de Mons, Place du Parc, 20, B-7000 Mons, Belgium.
  • Liu X; Max Planck Institute for Polymer Research, Ackermannweg 10, 55128 Mainz, Germany.
  • Hansen MR; College of Polymer Science and Engineering, State Key Laboratory of Polymer Material and Engineering, Sichuan University, 610065 Chengdu, P.R. China.
  • Tommasini M; Institute of Physical Chemistry, Westfal̈ische Wilhelms-Universitat Münster, Corrensstraße 28/30, D-48149 Münster, Germany.
  • De Feyter S; Dipartimento di Chimica, Materiali ed Ingegneria Chimica "G. Natta", Politecnico di Milano, Piazza Leonardo da Vinci 32, 20133 Milano, Italy.
  • Liu J; Department of Chemistry, Division of Molecular Imaging and Photonics, KU Leuven, Celestijnenlaan 200F, 3001 Leuven, Belgium.
  • Wang HI; Department of Chemistry and State Key Laboratory of Synthetic Chemistry, The University of Hong Kong, Pokfulam Road, Hong Kong, China.
  • Feng X; Max Planck Institute for Polymer Research, Ackermannweg 10, 55128 Mainz, Germany.
J Am Chem Soc ; 144(1): 228-235, 2022 Jan 12.
Article em En | MEDLINE | ID: mdl-34962807
ABSTRACT
Structurally precision graphene nanoribbons (GNRs) are promising candidates for next-generation nanoelectronics due to their intriguing and tunable electronic structures. GNRs with hybrid edge structures often confer them unique geometries associated with exotic physicochemical properties. Herein, a novel type of cove-edged GNRs with periodic short zigzag-edge segments is demonstrated. The bandgap of this GNR family can be tuned using an interplay between the length of the zigzag segments and the distance of two adjacent cove units along the opposite edges, which can be converted from semiconducting to nearly metallic. A family member with periodic cove-zigzag edges based on N = 6 zigzag-edged GNR, namely 6-CZGNR-(2,1), is successfully synthesized in solution through the Scholl reaction of a unique snakelike polymer precursor (10) that is achieved by the Yamamoto coupling of a structurally flexible S-shaped phenanthrene-based monomer (1). The efficiency of cyclodehydrogenation of polymer 10 toward 6-CZGNR-(2,1) is validated by FT-IR, Raman, and UV-vis spectroscopies, as well as by the study of two representative model compounds (2 and 3). Remarkably, the resultant 6-CZGNR-(2,1) exhibits an extended and broad absorption in the near-infrared region with a record narrow optical bandgap of 0.99 eV among the reported solution-synthesized GNRs. Moreover, 6-CZGNR-(2,1) exhibits a high macroscopic carrier mobility of ∼20 cm2 V-1 s-1 determined by terahertz spectroscopy, primarily due to the intrinsically small effective mass (m*e = m*h = 0.17 m0), rendering this GNR a promising candidate for nanoelectronics.

Texto completo: 1 Bases de dados: MEDLINE Idioma: En Revista: J Am Chem Soc Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Bases de dados: MEDLINE Idioma: En Revista: J Am Chem Soc Ano de publicação: 2022 Tipo de documento: Article