Highly efficient and stable tandem luminescent solar concentrators based on carbon dots and CuInSeS/ZnS quantum dots
Semi-transparent large-area luminescent solar concentrators (LSCs) have been considered an essential part of zero-energy or low-energy consuming buildings in the future. Inorganic colloidal quantum dots (QDs) are promising candidates for LSCs due to the advantages of a tunable bandgap, engineered la...
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Veröffentlicht in: | Nanoscale 2023-12, Vol.16 (1), p.188-194 |
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Zusammenfassung: | Semi-transparent large-area luminescent solar concentrators (LSCs) have been considered an essential part of zero-energy or low-energy consuming buildings in the future. Inorganic colloidal quantum dots (QDs) are promising candidates for LSCs due to the advantages of a tunable bandgap, engineered large Stokes shift, and relatively high photoluminescence (PL) quantum yield. However, LSCs that are fabricated using colloidal quantum dots exhibited an inferior stability under long-term illumination, demanding great efforts to explore the highly stable LSCs. Herein, we fabricated large-area (∼100 cm
2
) tandem LSCs based on highly stable carbon dots (CDs) and highly luminescent near-infrared emitting CuInSe
2−
x
S
x
/ZnS (CuInSeS/ZnS) QDs. Coupled with a Si diode as a reference, the power conversion efficiency of the corresponding tandem (dimensions: 10 × 10 × 0.5 cm
3
) and single LSCs (dimensions: 10 × 10 × 0.3 cm
3
) based on CuInSeS/ZnS QDs under one sun illumination are 0.46% and 0.5%, respectively. For single CuInSeS/ZnS QD based LSCs at a low concentration (0.039 wt%), external and internal quantum efficiencies reach up to 2.87% and 36.37%, respectively. After UV illumination for 8 h, bottom LSCs based on CuInSeS/ZnS QDs retain 93.22% of the initial PL emission, which is higher than that of LSCs (∼80%) without the CD protection. The highly efficient and stable tandem LSCs employing green CDs and NIR CuInSeS/ZnS QDs as PL emitters pave the way for the realization of large area building-integrated photovoltaic (BIPV) devices.
In this work, we fabricated the among green, environment-friendly tandem LSCs using CDs and near-infrared CuInSeS/ZnS QDs as PL emitters. Tandem LSCs exhibits high
PCE
(0.46%) and
η
ext
(2.57%) and improve the stability of bottom LSCs. |
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ISSN: | 2040-3364 2040-3372 |
DOI: | 10.1039/d3nr05471c |