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  4. Semiconducting Conjugated Coordination Polymer with High Charge Mobility Enabled by "4 + 2" Phenyl Ligands
 
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2023
Journal Article
Title

Semiconducting Conjugated Coordination Polymer with High Charge Mobility Enabled by "4 + 2" Phenyl Ligands

Abstract
Electrically conductive coordination polymers and metal–organic frameworks are attractive emerging electroactive materials for (opto-)electronics. However, developing semiconducting coordination polymers with high charge carrier mobility for devices remains a major challenge, urgently requiring the rational design of ligands and topological networks with desired electronic structures. Herein, we demonstrate a strategy for synthesizing high-mobility semiconducting conjugated coordination polymers (c-CPs) utilizing novel conjugated ligands with D2h symmetry, namely, “4 + 2” phenyl ligands. Compared with the conventional phenyl ligands with C6h symmetry, the reduced symmetry of the “4 + 2” ligands leads to anisotropic coordination in the formation of c-CPs. Consequently, we successfully achieve a single-crystalline three-dimensional (3D) c-CP Cu4DHTTB (DHTTB = 2,5-dihydroxy-1,3,4,6-tetrathiolbenzene), containing orthogonal ribbon-like π-d conjugated chains rather than 2D conjugated layers. DFT calculation suggests that the resulting Cu4DHTTB exhibits a small band gap (∼0.2 eV), strongly dispersive energy bands near the Fermi level with a low electron-hole reduced effective mass (∼0.2m0*). Furthermore, the four-probe method reveals a semiconducting behavior with a decent conductivity of 0.2 S/cm. Thermopower measurement suggests that it is a p-type semiconductor. Ultrafast terahertz photoconductivity measurements confirm Cu4DHTTB’s semiconducting nature and demonstrate the Drude-type transport with high charge carrier mobilities up to 88 ± 15 cm2 V-1 s-1, outperforming the conductive 3D coordination polymers reported till date. This molecular design strategy for constructing high-mobility semiconducting c-CPs lays the foundation for achieving high-performance c-CP-based (opto-)electronics.
Author(s)
Xing, Huang
TU Dresden  
Fu, Shuai
Max-Planck-Institut für Polymerforschung
Lin, Cong
Hong Kong Polytechnic University  
Lu, Yang
TU Dresden  
Wang, Mingchao
TU Dresden  
Zhang, Peng
TU Dresden  
Huang, Chuanhui
TU Dresden  
Li, Zichao
Helmholtz-Zentrum Dresden-Rossendorf -HZDR-  
Liao, Zhongquan  
Fraunhofer-Institut für Keramische Technologien und Systeme IKTS  
Zou, Ye
Chinese Academy of Sciences  
Li, Jian
KTH Royal Institute of Technology, Stockholm  
Zhou, Shengqiang
Helmholtz-Zentrum Dresden-Rossendorf -HZDR-  
Helm, Manfred
Helmholtz-Zentrum Dresden-Rossendorf -HZDR-  
St. Petkov, Petko
Technical University of Sofia  
Heine, Thomas
TU Dresden  
Bonn, Mischa
Max-Planck-Institut für Polymerforschung
Wang, Hai I.
Max-Planck-Institut für Polymerforschung
Feng, Xinliang
TU Dresden  
Dong, Renhao
TU Dresden  
Journal
Journal of the American Chemical Society  
Project(s)
Graphene Flagship Core Project 3  
Funding(s)
H2020  
Funder
European Commission  
DOI
10.1021/jacs.2c11511
Language
English
Fraunhofer-Institut für Keramische Technologien und Systeme IKTS  
Keyword(s)
  • Carrier dynamics

  • Charge transport

  • Coordination polymers

  • Electrical conductivity

  • Ligands

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