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The importance of microstructure in determining polaron generation yield in poly(9,9-dioctylfluorene)

Abstract:
Understanding the structure–property relationships that govern exciton dissociation into polarons in conjugated polymers is key in developing materials for optoelectronic applications such as light-emitting diodes and solar cells. Here, the polymer poly(9,9-dioctylfluorene) (PFO), which can form a minority population of chain segments in a distinct, lower-energy “β-phase” conformation, is studied to examine the influence of conformation and microstructure on polaron generation in neat thin films. Through use of ultrafast transient absorption spectroscopy to probe PFO thin films with glassy-phase and β-phase microstructures and selectively exciting each phase independently, the dynamics of exciton dissociation are resolved. Ultrafast polaron generation is consistently found to be significantly higher and long-lived in thin films containing β-phase chain segments, with an average polaron yield that increases by over a factor of three to 4.9% vs 1.4% in glassy-phase films. The higher polaron yield, attributed to an increased exciton dissociation yield at the interface between conformational phases, is most likely due to a combination of the significant energetic differences between glassy-phase and β-phase segments and disparities in electronic delocalization and charge carrier mobilities between phases.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1021/acs.chemmater.9b01256

Authors



Publisher:
American Chemical Society
Journal:
Chemistry of Materials More from this journal
Volume:
31
Issue:
17
Pages:
6787-6797
Publication date:
2019-05-28
Acceptance date:
2019-05-28
DOI:
EISSN:
1520-5002
ISSN:
0897-4756


Language:
English
Keywords:
Pubs id:
pubs:1011308
UUID:
uuid:329210f7-2b26-4c68-b006-51455580bc28
Local pid:
pubs:1011308
Source identifiers:
1011308
Deposit date:
2019-06-11

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