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Updated: Sep 19, 2026

Photochemical Oxidative Growth of Iridium Oxide Nanoparticles on CdSe@CdS Nanorods
Published on: February 11, 2016
Ferritin-directed biomimetic photo-nanoreactors with directional cascade energy transfer for enhanced photocatalytic
Ao Song1, Shengzhuo Ma1, Feng Xu2
1Key Laboratory for Molecular Enzymology and Engineering of Ministry of Education, School of Life Sciences, Jilin University, Changchun 130012, China.
Hypothesis:
Natural photosynthetic systems achieve highly efficient solar energy conversion through precisely organized light-harvesting networks and directional excitation energy transfer. Protein nanocage scaffolds are expected to spatially organize multiple chromophores to construct an artificial cascade energy-transfer system, thereby improving photon utilization and coupling light harvesting with photocatalytic conversion.
Experiments:
A ferritin (Fn)-directed biomimetic photo-nanoreactor was constructed by integrating covalently conjugated eosin Y (EY) and electrostatically assembled carbon dots (CD1 and CD2) within a confined protein microenvironment. The hierarchical organization of these photoactive components enabled the formation of a sequential fluorescence resonance energy transfer (FRET) pathway from CD1 to CD2 and finally to EY. The structural characteristics, energy-transfer behaviors, and photocatalytic performance of the resulting CDs-EY@Fn nanoreactors were systematically investigated.
Findings:
The Fn-confined nanoarchitecture established a directional two-step cascade FRET network with an energy-transfer efficiency of 61% and an antenna effect of 18.3, significantly enhancing spectral utilization and excitation-energy funneling. The optimized CDs-EY@Fn nanoreactor exhibited markedly improved photocatalytic conversion performance compared with free EY, achieving a product yield of 74.68% after irradiation, more than four times that obtained with EY alone. These findings demonstrate that protein-directed chromophore organization provides an effective strategy for constructing artificial photosynthetic nanoplatforms with integrated light harvesting and catalytic conversion capabilities.
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