Issue 29, 2023

Tunable J-type aggregation of silicon phthalocyanines in a surface-anchored metal–organic framework thin film

Abstract

Organic chromophores and semiconductors, like anthracene, pentacene, perylene, and porphyrin, are prone to aggregation, and their packing in the solid state is often hard to predict and difficult to control. As the condensed phase structures of these chromophores and semiconductors are of crucial importance for their optoelectronic functionality, strategies to control their assembly and provide new structural motifs are important. One such approach uses metal–organic frameworks (MOFs); the organic chromophore is converted into a linker and connected by metal ions or nodes. The spatial arrangement of the organic linkers can be well-defined in a MOF, and hence optoelectronic functions can be adjusted accordingly. We have used such a strategy to assemble a phthalocyanine chromophore and illustrated that the electronic inter-phthalocyanine coupling can be rationally tuned by introducing bulky side grounds to increase steric hindrance. We have designed new phthalocyanine linkers and using a layer-by-layer liquid-phase epitaxy strategy thin films of phthalocyanine-based MOFs have been fabricated and their photophysical properties explored. It was found that increasing the steric hindrance around the phthalocyanine reduced the effect of J-aggregation in the thin film structures.

Graphical abstract: Tunable J-type aggregation of silicon phthalocyanines in a surface-anchored metal–organic framework thin film

Supplementary files

Article information

Article type
Paper
Submitted
24 Apr 2023
Accepted
21 Jun 2023
First published
03 Jul 2023
This article is Open Access
Creative Commons BY license

Phys. Chem. Chem. Phys., 2023,25, 19626-19632

Tunable J-type aggregation of silicon phthalocyanines in a surface-anchored metal–organic framework thin film

H. Chen, L. Martín-Gomis, Z. Xu, J. C. Fischer, I. A. Howard, D. Herrero, V. Sobrino-Bastán, Á. Sastre-Santos, R. Haldar and C. Wöll, Phys. Chem. Chem. Phys., 2023, 25, 19626 DOI: 10.1039/D3CP01865B

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