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Spectroscopic investigations of three-phase morphology evolution in polymer: fullerene solar cell blends

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jp-2016-028989_Manuscript_JPCC_revised_accepted.pdfAccepted version1.86 MBAdobe PDFView/Open
jp-2016-028989_Manuscript_JPCC_ESI_revised_accepted.pdfSupporting information1.5 MBAdobe PDFView/Open
Title: Spectroscopic investigations of three-phase morphology evolution in polymer: fullerene solar cell blends
Authors: Razzell-Hollis, J
Limbu, S
Kim, J-S
Item Type: Journal Article
Abstract: Nanoscale morphology is critical to determining the device efficiency of bulk heterojunction organic solar cells, and the ideal structure is often described as a three-phase network with one well-mixed phase for efficient charge separation and two purer phases for efficient charge transport. In order to understand such nanoscale morphology, we have performed detailed spectroscopic investigations and identified the three-phase morphology evolution in one of the classic blend systems, P3HT:PCBM. The impact of different phases on polymer molecular (chain conformational) order and blend thermal and optical properties were monitored in situ using resonant Raman, absorption, and photoluminescence spectroscopy techniques. Semicrystalline P3HT was found to accommodate up to ∼25% PCBM (by weight) in its amorphous phase, with very little impact on either polymer molecular order or aggregation. Higher concentrations of PCBM resulted in a greater proportion of amorphous mixed phase and reduced polymer molecular order and aggregation. On the other hand, the formation of crystalline purer phases via phase separation was evident during in situ thermal annealing, revealing a consistent glass transition temperature (Tg) of ∼50 °C in blends with up to 50% wt PCBM. This indicates similar local chemical compositions in the amorphous mixed phase present in blends despite different overall blend ratios. A much higher Tg (80–100 °C) was observed for blends with >50% wt PCBM, indicating a stronger impact of PCBM on P3HT molecular order and thermal properties, requiring a higher annealing temperature to ensure formation of the preferred three-phase morphology.
Issue Date: 26-May-2016
Date of Acceptance: 5-May-2016
URI: http://hdl.handle.net/10044/1/66085
DOI: https://dx.doi.org/10.1021/acs.jpcc.6b02898
ISSN: 1932-7447
Publisher: American Chemical Society
Start Page: 10806
End Page: 10814
Journal / Book Title: Journal of Physical Chemistry C
Volume: 120
Issue: 20
Copyright Statement: © 2016 American Chemical Society
Sponsor/Funder: Engineering & Physical Science Research Council (EPSRC)
Engineering & Physical Science Research Council (EPSRC)
Samsung Electronics Co Ltd
Engineering and Physical Sciences Research Council
Funder's Grant Number: EP/J021199/1
EP/K029843/1
n/a
EP/L016702/1
Keywords: Science & Technology
Physical Sciences
Technology
Chemistry, Physical
Nanoscience & Nanotechnology
Materials Science, Multidisciplinary
Chemistry
Science & Technology - Other Topics
Materials Science
PHOTOVOLTAICS
P3HT/PCBM
TRANSITION
SEPARATION
CONVERSION
FILMS
ORDER
09 Engineering
03 Chemical Sciences
10 Technology
Physical Chemistry
Publication Status: Published
Online Publication Date: 2016-05-09
Appears in Collections:Physics
Experimental Solid State
Faculty of Natural Sciences