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Yoichi Sasaki

@yoichisasaki.bsky.social
17 followers 5 following 4 posts

Ph.D. (Eng.)👨‍⚕️/ Associate Prof. Kyushu Univ. 🇯🇵/ Photochemistry 🧪✨/ Physical Chemistry/ Light-matter interaction

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Yoichi Sasaki @yoichisasaki.bsky.social · 23/06/2026
Happy to share our recent work on solid-state photon upconversion! I’m proud of the hard work and key contributions from Naoyuki, Hayato, and Ni that made this research possible. rdcu.be/fp1Kn
rdcu.be
Sterically protected π-electron systems for efficient solid-state photon upconversion
Nature Communications - A solid-state visible-to-ultraviolet upconverting system is developed using suitably alkyl-functionalized acceptors. Reconciling fast triplet energy diffusion and high...
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Yoichi Sasaki @yoichisasaki.bsky.social · 25/03/2026
Exploring Spin-State Selective Harvesting Pathways from Singlet Fission Dimers to a Near-Infrared-Emissive Spin-Flip Emitter | Journal of the American Chemical Society pubs.acs.org/doi/10.1021/...
pubs.acs.org
Exploring Spin-State Selective Harvesting Pathways from Singlet Fission Dimers to a Near-Infrared-Emissive Spin-Flip Emitter
Singlet fission (SF), a photophysical process generating two triplet excitons from one singlet exciton, has the potential to boost efficiency in photovoltaics and organic light-emitting diodes. Previous studies on energy-level control and intermolecular interactions have identified key factors for maximizing the efficiency of the initial SF process. However, in isothermic/endothermic SF systems, such as tetracene derivatives, the subsequent sensitization process becomes less efficient in the presence of a competing Förster resonance energy transfer (FRET) process. Here, we demonstrate that a molybdenum-based near-infrared light-emitting spin-flip emitter serves as a triplet-selective energy acceptor from triplet states of tetracene-based dimers generated by SF. The large energy gap existing between the spin-allowed transitions and the luminescent spin-flip transition of the molybdenum complex allowed efficient exothermic triplet energy transfer (TET) to the spin-flip excited doublet state of the complex while circumventing the FRET from the initially formed tetracene singlet state to the high-energy spin-allowed states of the complex. The quantum yields of the doublet state formation of the molybdenum complex by tetracene-based SF dimers with phenylene, 2,5-methylphenylene, and p-terphenylene bridging units were quantified to be 112 ± 6%, 132 ± 2%, and 128 ± 4%, respectively, in solution. The drop of fluorescence lifetimes of the SF dimers at high concentrations of the molybdenum complex implies energy transfer from exchange-coupled triplet pairs, highlighting the importance of controlling exchange interaction and triplet pair recombination. This work represents a significant step toward developing exciton/photon amplification materials by combining SF materials with transition-metal complexes, advancing the application of SF beyond conventional limitations.
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Yoichi Sasaki @yoichisasaki.bsky.social · 02/10/2025
Glad to hear that the our work on azulene dimers was selected as the 2025 HOT PCCP article! @pccp.rsc.org doi.org/10.1039/D5CP...
doi.org
Ultrafast nonradiative decay from higher-lying excited states in azulene-dimers
The anti-Kasha fluorescence nature of azulene has been explained by the large energy gap between the second excited state and the lowest excited singlet state. While such property is expected to be pe...
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