Multifunctional ytterbium oxide buffer for perovskite solar cells.
basic_science · Level V
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- Record sourced from PubMed, PMID 38233617.
- Also identified by DOI 10.1038/s41586-023-06892-x.
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Abstract
Perovskite solar cells (PSCs) comprise a solid perovskite absorber sandwiched between several layers of different charge-selective materials, ensuring unidirectional current flow and high voltage output of the devices<sup>1,2</sup>. A 'buffer material' between the electron-selective layer and the metal electrode in p-type/intrinsic/n-type (p-i-n) PSCs (also known as inverted PSCs) enables electrons to flow from the electron-selective layer to the electrode<sup>3-5</sup>. Furthermore, it acts as a barrier inhibiting the inter-diffusion of harmful species into or degradation products out of the perovskite absorber<sup>6-8</sup>. Thus far, evaporable organic molecules<sup>9,10</sup> and atomic-layer-deposited metal oxides<sup>11,12</sup> have been successful, but each has specific imperfections. Here we report a chemically stable and multifunctional buffer material, ytterbium oxide (YbO<sub>x</sub>), for p-i-n PSCs by scalable thermal evaporation deposition. We used this YbO<sub>x</sub> buffer in the p-i-n PSCs with a narrow-bandgap perovskite absorber, yielding a certified power conversion efficiency of more than 25%. We also demonstrate the broad applicability of YbO<sub>x</sub> in enabling highly efficient PSCs from various types of perovskite absorber layer, delivering state-of-the-art efficiencies of 20.1% for the wide-bandgap perovskite absorber and 22.1% for the mid-bandgap perovskite absorber, respectively. Moreover, when subjected to ISOS-L-3 accelerated ageing, encapsulated devices with YbO<sub>x</sub> exhibit markedly enhanced device stability.