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Updated: Jan 13, 2026

Integrating a Triplet-triplet Annihilation Up-conversion System to Enhance Dye-sensitized Solar Cell Response to Sub-bandgap Light
Published on: September 12, 2014
Natural Photosensitizer for Regulating Organic Solar Cells: Coupling Mechanisms of Intermolecular Interactions and
Kaiyan Zhang1,2, Meilin Guo3, Ying Shi3
1College of Materials Science and Engineering, Northeast Forestry University, Harbin 150040, Heilongjiang, China.
Abstract:
With the expanding application of eco-friendly natural photosensitizers in photovoltaics, thoroughly investigating energy and charge transfer mechanisms is crucial for enhancing the performance of chlorophyll-based devices. Here, we employed quantum chemistry and spectroscopy to explore hybrid systems comprising a sodium zinc chlorophyll (SZC) donor paired with nonfullerene acceptors in various configurations. The L8-BO acceptor demonstrated superior energy level alignment, complementary light absorption, and larger electrostatic potential differences when interacting with SZC, thereby strengthening intermolecular interactions and improving optoelectronic performance. Steady-state optical studies revealed the synergistic effects of approximately 80% charge transfer along with auxiliary fluorescence resonance energy transfer within SZC-based systems. Optimized 1:1.5 blend films distinguishably exhibit substantial quenching and improved charge transfer. Notably, the superior charge transfer proportion and exciton dissociation efficiency observed in the SZC:L8-BO system were mainly attributed to favorable stacking morphology, enhanced van der Waals forces, abundant charge transfer states, and an ultrafast charge separation rate (up to 2.810 × 1014 s-1). This study elucidates the structure-property relationships and interaction mechanisms inherent in chlorophyll-based photoactive layers, thus establishing a foundation for developing high-efficiency organic solar cells.
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