Single Atom Selenium Substitution‐Mediated P‐Type Doping in Polythiophenes toward High‐Performance Organic Electronics and Thermoelectrics
Authors
Chen, Chen
Jacobs, Ian E
Jellett, Cameron
Jiao, Xuechen
Ponder, James F
Kang, Boseok
Lee, Seon Baek
Huang, Yuxuan
Zhang, Lu
Statz, Martin
Sun, Yuanhui
Lin, Yue
Kang, Keehoon
She, Xiaojian
Hu, Yuanyuan
Zhang, Tao
Jiang, Lang
McNeill, Christopher R
McCulloch, Iain
Publication Date
2022-06-10Journal Title
Advanced Electronic Materials
ISSN
2199-160X
Language
en
Type
Article
This Version
AO
VoR
Metadata
Show full item recordCitation
Chen, C., Jacobs, I. E., Jellett, C., Jiao, X., Ponder, J. F., Kang, B., Lee, S. B., et al. (2022). Single Atom Selenium Substitution‐Mediated P‐Type Doping in Polythiophenes toward High‐Performance Organic Electronics and Thermoelectrics. Advanced Electronic Materials https://doi.org/10.1002/aelm.202200053
Description
Funder: China Scholarship Council; Id: http://dx.doi.org/10.13039/501100004543
Funder: Royal Society Newton International Fellowship
Abstract
Abstract: Heavy heteroatom substitution of the backbone is an effective strategy to improve molecular packing and charge delocalization in polymer semiconductors. Such a backbone modification also facilitates oxidative doping as a result of reduced ionization potential (IP). Here, the effect of single‐atom selenium substitution on doping and charge transport properties of a class of polythiophene copolymers is explored. The room temperature (RT) conductivities of the doped polymers are significantly enhanced by the selenium substitution for both molecular doping and ion exchange doping. The enhanced conduction is rationalized by the better crystallinity of the selenium‐containing system, which can be reinforced by a chain‐extended ribbon‐phase morphology induced by thermal annealing, which is robust toward doping. The resulting increase in the charge delocalization of the doped selenium‐containing system is evidenced by temperature‐dependent conductivities. In ion exchange doped films the maximum conductivity of ≈700 S cm−1 and a high thermoelectric (TE) power factor (PF) of 46.5 μW m−1 K−2 is achieved for the doped selenophene polymer and signatures of a metal‐insulator (M–I) transition are observed that are characteristics for heterogeneous conduction systems. The results show that single‐atom selenium substitution is an effective molecular design approach for improving the charge transport and TE properties of conjugated polymers.
Keywords
Research Article, Research Articles, chalcogen substitution, doping, organic electronics, polythiophene, thermoelectrics
Sponsorship
European Research Council (610115)
Engineering and Physical Sciences Research Council (EP/R031894/1)
Royal Society Research Professorship (RP\R1\201082)
European Commission (EP/P024947/1)
Identifiers
aelm202200053
External DOI: https://doi.org/10.1002/aelm.202200053
This record's URL: https://www.repository.cam.ac.uk/handle/1810/338017
Rights
Licence:
http://creativecommons.org/licenses/by/4.0/
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