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raw data for: "c-ALD-grown Metal Oxide Shell Enables Distance-Independent Triplet Energy Transfer from Quantum Dots to Molecular Dyes"

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Zenodo2025-08-27 更新2026-05-26 收录
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Hybrid nanocomposites including quantum dots (QDs) and molecular dyes offer tunability of charge and energy transfer processes, which are attractive for applications spanning from light-emitting devices to photocatalysis and photon upconversion. Core@shell QDs have garnered attention for their ability to modulate charge and energy transfer from the core to the dye via the shell. A few recent studies suggested that the core@shell QDs are less demanding in terms of QD-dye electronic coupling and that the distance-dependence of transfer efficiencies may vary from what is traditionally observed. However, the mechanistic role of the shell remains unclear. Here, we describe the synthesis of QD-dye nanocomposites including CdSe@AlOx core@shell QDs, and we report the observation of a nearly distance-independent triplet energy transfer (TEnT) to polyaromatic hydrocarbon (PAH) dyes from the CdSe core up to almost 2 nm. The use of colloidal atomic layer deposition (c-ALD) for the growth of the metal-oxide shell enables tunability of the system, which is crucial to elucidate the role of the shell and the thickness-dependence of the TEnT. We propose a plausible mechanism where defects in the metal oxide act as intermediate states, enabling electrons to tunnel across the oxide and achieving a long-range, distance-independent TEnT. The versatility of c-ALD, along with the ability of oxides to preserve the optoelectronic properties of QDs showcases the potential of oxide shells to optimize the QD-dye interaction to achieve long-range TEnT to molecular dyes, opening new avenues for applying QDs as sensitizers in light-harvesting, emission, and conversion applications.

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Zenodo
创建时间:
2025-08-13
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