AI Article Synopsis

  • Researchers developed advanced luminescent down-shifting using encapsulated nanostructured perovskite materials to improve solar cell performance.
  • They created and characterized thin films of lead halide perovskite nanocrystals using various techniques, and encapsulated them with protective layers.
  • The results showed that adding these perovskite nanocrystals boosted the current and efficiency of nanocrystalline silicon photovoltaic cells, with a 3.1% increase in current density and a 5.6% increase in power conversion efficiency.

Article Abstract

The present contribution aims to enhance solar cells' performance via the development of advanced luminescent down-shifting based on encapsulated nanostructured perovskite materials. Here, thin films of inorganic lead halide (CsPbBr) perovskite nanocrystal luminophores were synthetized, by hot-injection, deposited on glass substrates by spin-coating, and encapsulated with parylene type C, via chemical vapor deposition, to protect and stabilize the films. The optical properties of these thin films were characterized by absorption, emission and 2D contour spectra, their structure by X-ray diffraction and X-ray photoelectron spectroscopy, and the morphology by Scanning Transmission Electron microscopy. I-V curve and spectral response nanocrystalline silicon photovoltaic (nc-Si:H PV) cells were studied in the absence and presence of the perovskite and parylene luminescent down-shifting layers. The incorporation of the CsPbBr nanocrystals and their encapsulation with the parylene type C polymeric coating led to an increase in the current generated and the spectral response of the PV cells in the regime of the nanocrystals' fluorescence emission. A 3.1% increase in the short circuit current density and a 5.6% increase in the power conversion efficiency were observed.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9823874PMC
http://dx.doi.org/10.3390/nano13010210DOI Listing

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