Exceptionally high charge mobility in phthalocyanine-based poly(benzimidazobenzophenanthroline)-ladder-type two-dimensional conjugated polymers
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Published:2023-06-19
Issue:7
Volume:22
Page:880-887
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ISSN:1476-1122
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Container-title:Nature Materials
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language:en
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Short-container-title:Nat. Mater.
Author:
Wang MingchaoORCID, Fu ShuaiORCID, Petkov PetkoORCID, Fu YubinORCID, Zhang ZhitaoORCID, Liu YannanORCID, Ma JiORCID, Chen GuangboORCID, Gali Sai Manoj, Gao Lei, Lu Yang, Paasch SilviaORCID, Zhong Haixia, Steinrück Hans-Peter, Cánovas EnriqueORCID, Brunner Eike, Beljonne DavidORCID, Bonn MischaORCID, Wang Hai I.ORCID, Dong RenhaoORCID, Feng XinliangORCID
Abstract
AbstractTwo-dimensional conjugated polymers (2DCPs), composed of multiple strands of linear conjugated polymers with extended in-plane π-conjugation, are emerging crystalline semiconducting polymers for organic (opto)electronics. They are represented by two-dimensional π-conjugated covalent organic frameworks, which typically suffer from poor π-conjugation and thus low charge carrier mobilities. Here we overcome this limitation by demonstrating two semiconducting phthalocyanine-based poly(benzimidazobenzophenanthroline)-ladder-type 2DCPs (2DCP-MPc, with M = Cu or Ni), which are constructed from octaaminophthalocyaninato metal(ii) and naphthalenetetracarboxylic dianhydride by polycondensation under solvothermal conditions. The 2DCP-MPcs exhibit optical bandgaps of ~1.3 eV with highly delocalized π-electrons. Density functional theory calculations unveil strongly dispersive energy bands with small electron–hole reduced effective masses of ~0.15m0 for the layer-stacked 2DCP-MPcs. Terahertz spectroscopy reveals the band transport of Drude-type free carriers in 2DCP-MPcs with exceptionally high sum mobility of electrons and holes of ~970 cm2 V−1 s−1 at room temperature, surpassing that of the reported linear conjugated polymers and 2DCPs. This work highlights the critical role of effective conjugation in enhancing the charge transport properties of 2DCPs and the great potential of high-mobility 2DCPs for future (opto)electronics.
Publisher
Springer Science and Business Media LLC
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science,General Chemistry
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