Issue 6, 2004

Degenerate nonlinear absorption and optical power limiting properties of asymmetrically substituted stilbenoid chromophores

Abstract

Two-photon absorption (2PA) spectra (650–1000 nm) of a series of model chromophores were measured via a newly developed nonlinear absorption spectral technique based on a single and powerful femtosecond white-light continuum beam. The experimental results suggested that when either an electron-donor or an electron-acceptor was attached to a trans-stilbene at a para-position, an enhancement in molecular two-photon absorptivity was observed in both cases, particularly in the 650–800 nm region. However, the push–pull chromophores with both the donor and acceptor groups showed larger overall two-photon absorption cross-sections within the studied spectral region as compared to their mono-substituted analogues. The combined results of the solvent effect and the 1H-NMR studies indicated that stronger acceptors produce a more efficient intramolecular charge transfer character upon excitation, leading to increased molecular two-photon responses in this model-compound set. A fairly good 2PA based optical power limiting behavior from one of the model chromophores is also demonstrated.

Graphical abstract: Degenerate nonlinear absorption and optical power limiting properties of asymmetrically substituted stilbenoid chromophores

Supplementary files

Article information

Article type
Paper
Submitted
21 Oct 2003
Accepted
07 Jan 2004
First published
12 Feb 2004

J. Mater. Chem., 2004,14, 982-991

Degenerate nonlinear absorption and optical power limiting properties of asymmetrically substituted stilbenoid chromophores

T. Lin, G. S. He, P. N. Prasad and L. Tan, J. Mater. Chem., 2004, 14, 982 DOI: 10.1039/B313185H

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