Exciton bimolecular annihilation dynamics in supramolecular nanostructures of conjugated oligomers

57Citations
Citations of this article
55Readers
Mendeley users who have this article in their library.

Abstract

We present femtosecond transient absorption measurements on π-conjugated supramolecular assemblies in a high-pump-fluence regime. Oligo(p − phenylenevinylene) monofunctionalized with ureido − s − triazine (MOPV) self-assembles into chiral stacks in dodecane solution below 75°C at a concentration of 4 × 10−4 M. We observe exciton bimolecular annihilation in MOPV stacks at high excitation fluence, indicated by the fluence-dependent decay of 11Bu − exciton spectral signatures and by the sublinear fluence dependence of time- and wavelength-integrated photoluminescence (PL) intensity. These two characteristics are much less pronounced in MOPV solution where the phase equilibrium is shifted significantly away from supramolecular assembly, slightly below the transition temperature. A mesoscopic rate-equation model is applied to extract the bimolecular annihilation rate constant from the excitation fluence dependence of transient absorption and PL signals. The results demonstrate that the bimolecular annihilation rate is very high with a square-root dependence in time. The exciton annihilation results from a combination of fast exciton diffusion and resonance energy transfer. The supramolecular nanostructures studied here have electronic properties that are intermediate between molecular aggregates and polymeric semiconductors. © 2003 The American Physical Society.

Cite

CITATION STYLE

APA

Daniel, C., Herz, L. M., Silva, C., Hoeben, F. J. M., Jonkheijm, P., Schenning, A. P. H. J., & Meijer, E. W. (2003). Exciton bimolecular annihilation dynamics in supramolecular nanostructures of conjugated oligomers. Physical Review B - Condensed Matter and Materials Physics, 68(23). https://doi.org/10.1103/PhysRevB.68.235212

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free