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Insights into the kinetics and self-assembly order of small-molecule organic semiconductor/quantum dot blends during blade coating

Toolan, Daniel T.W.; Weir, Michael P.; Wang, Shuangqing; Dowland, Simon A.; Zhang, Zhilong; Xiao, James; Rawle, Jonathan; Greenham, Neil; Friend, Richard H.; Rao, Akshay; Jones, Richard A. L.; Ryan, Anthony J.

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Authors

Daniel T.W. Toolan

Shuangqing Wang

Simon A. Dowland

Zhilong Zhang

James Xiao

Jonathan Rawle

Neil Greenham

Richard H. Friend

Akshay Rao

Richard A. L. Jones

Anthony J. Ryan



Abstract

Organic–inorganic nanocomposite films formed from blends of small-molecule organic semiconductors and colloidal quantum dots are attractive candidates for high efficiency, low-cost solar energy harvesting devices. Understanding and controlling the self-assembly of the resulting organic–inorganic nanocomposite films is crucial in optimising device performance, not only at a lab-scale but for large-scale, high-throughput printing and coating methods. Here, in situ grazing incidence X-ray scattering (GIXS) gives direct insights into how small-molecule organic semiconductors and colloidal quantum dots self-assemble during blade coating. Results show that for two blends separated only by a small difference in the structure of the small molecule forming the organic phase, crystallisation may proceed down two distinct routes. It either occurs spontaneously or is mediated by the formation of quantum dot aggregates. Irrespective of the initial crystallisation route, the small-molecule crystallisation acts to exclude the quantum dot inclusions from the growing crystalline matrix phase. These results provide important fundamental understanding of structure formation in nanocomposite films of organic small molecules and colloidal quantum dots prepared via solution processing routes. It highlights the fundamental difference to structural evolution which can be made by seemingly small changes in system composition. It provides routes for the structural design and optimisation of solution-processed nanocomposites that are compatible with the large-scale deposition manufacturing techniques that are crucial in driving their wider adoption in energy harvesting applications.

Citation

Toolan, D. T., Weir, M. P., Wang, S., Dowland, S. A., Zhang, Z., Xiao, J., …Ryan, A. J. (2023). Insights into the kinetics and self-assembly order of small-molecule organic semiconductor/quantum dot blends during blade coating. Nanoscale Horizons, 967-1124. https://doi.org/10.1039/d3nh00079f

Journal Article Type Article
Acceptance Date May 25, 2023
Online Publication Date May 25, 2023
Publication Date Aug 1, 2023
Deposit Date Jun 8, 2023
Publicly Available Date Jun 9, 2023
Journal Nanoscale Horizons
Print ISSN 2055-6756
Electronic ISSN 2055-6764
Publisher Royal Society of Chemistry (RSC)
Peer Reviewed Peer Reviewed
Issue 8
Pages 967-1124
DOI https://doi.org/10.1039/d3nh00079f
Public URL https://nottingham-repository.worktribe.com/output/21630473
Publisher URL https://pubs.rsc.org/en/content/articlelanding/2023/NH/D3NH00079F

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Insights into the kinetics and self-assembly order of small-molecule organic semiconductor/quantum dot blends during blade coating † (21 Mb)
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