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Updated: Jun 17, 2026

Novel Techniques for Observing Structural Dynamics of Photoresponsive Liquid Crystals
Published on: May 29, 2018
Facile synthetic approach to laser chromophores with fast excited-state dynamics, high stability and low ASE
Van T N Mai1, Masashi Mamada2,3, Atul Shukla4
1School of Chemistry and Molecular Biosciences, The University of Queensland, Brisbane, QLD, 4072, Australia. s.lo@uq.edu.au.
Abstract:
Recent progress toward electrically pumped organic laser diodes has highlighted the demand for organic gain media that simultaneously exhibit ultralow lasing thresholds and long-term operational stability. However, organic laser dyes remain fundamentally limited by photochemical degradation, thermal instability, and excited-state loss processes under high excitation densities. Here, we report a simple synthetic strategy with relatively high overall yields to enhance the performance of organic laser dyes through the selective elimination of photolabile functionalities while preserving fast excited-state dynamics. This targeted molecular simplification suppresses dominant photodegradation pathways particularly under intense continuous-wave optical pumping with ≥14 times enhancements. The resulting materials also exhibit ultrahigh radiative decay rates (up to 1.96 × 109 s-1), among the highest reported for organic lasing chromophores, together with a fast photoluminescence lifetime (down to 0.47 ns) and a high stimulated emission cross-section of 6.7 × 10-16 cm2 (at 409 nm). These characteristics enable ultralow amplified spontaneous emission (ASE) thresholds of 0.72 ± 0.02 (at 440 nm) and 0.64 ± 0.04 µJ cm-2 (at 436 nm) in the deep blue spectral region for neat and blend films of the new TFBPCz, where the new FBPCz also exhibits a record low solid-state ASE threshold values of 0.72 ± 0.02 µJ cm-2 at 414 nm for the blend film (and 0.76 ± 0.02 µJ cm-2 at 418 nm for neat films) in the violet/blue range. Importantly, stimulated emission is spectrally isolated from triplet absorption, effectively suppressing singlet-triplet annihilation. Along with the enhanced photostability and thermal stability achieved through the molecular design, the combination of ultrafast radiative dynamics and high optical gain highlights these new materials as promising gain media for next-generation organic laser diodes and solid-state organic laser platforms.
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