Abstract
Thermalization losses limit the photon-to-power conversion of solar cells at the high-energy side of the solar spectrum, as electrons quickly lose their energy relaxing to the band edge. Hot-electron transfer could reduce these losses. Here, we demonstrate fast and efficient hot-electron transfer between lead selenide and cadmium selenide quantum dots assembled in a quantum-dot heterojunction solid. In this system, the energy structure of the absorber material and of the electron extracting material can be easily tuned via a variation of quantum-dot size, allowing us to tailor the energetics of the transfer process for device applications. The efficiency of the transfer process increases with excitation energy as a result of the more favorable competition between hot-electron transfer and electron cooling. The experimental picture is supported by time-domain density functional theory calculations, showing that electron density is transferred from lead selenide to cadmium selenide quantum dots on the sub-picosecond timescale.
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CITATION STYLE
Grimaldi, G., Crisp, R. W., Ten Brinck, S., Zapata, F., Van Ouwendorp, M., Renaud, N., … Houtepen, A. J. (2018). Hot-electron transfer in quantum-dot heterojunction films. Nature Communications, 9(1). https://doi.org/10.1038/s41467-018-04623-9
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