Issue 9, 2023

Symmetry-breaking charge transfer and intersystem crossing in copper phthalocyanine thin films

Abstract

Intermolecular interactions in π-stacked chromophores strongly influence their photophysical properties, and thereby also their function in photonic applications. Mixed electronic and vibrational coupling interactions lead to complex potential energy landscapes with competitive photophysical pathways. Here, we characterize the photoexcited dynamics of the small molecule semiconductor copper pthalocyanine (CuPc) in solution and in thin film, the latter comprising two different π-stacked architectures, α-CuPc and β-CuPc. In solution, CuPc undergoes ultrafast intersytem crossing (ISC) to the triplet excited state. In the solid state, both α-CuPc and β-CuPc morphologies exhibit a mixing between Frenkel and charge-transfer excitons (Frenkel–CT mixing). We find that this mixing influences the photophysical properties differently, based on morphology. In addition to ISC, α-CuPc demonstrates symmetry-breaking charge transfer, which furthermore depends on excitation wavelength. This mechanism is not observed in β-CuPc. These results elucidate how molecular organization mediates the balance of competitive photexcited decay mechanisms in organic semiconductors.

Graphical abstract: Symmetry-breaking charge transfer and intersystem crossing in copper phthalocyanine thin films

Supplementary files

Article information

Article type
Paper
Submitted
08 Nov 2022
Accepted
28 Jan 2023
First published
30 Jan 2023
This article is Open Access
Creative Commons BY license

Phys. Chem. Chem. Phys., 2023,25, 6847-6856

Symmetry-breaking charge transfer and intersystem crossing in copper phthalocyanine thin films

E. del Pino Rosendo, O. Yildiz, W. Pisula, T. Marszalek, P. W. M. Blom and C. Ramanan, Phys. Chem. Chem. Phys., 2023, 25, 6847 DOI: 10.1039/D2CP05240G

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