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Multifunctional ytterbium oxide buffer for perovskite solar cells.

Peng Chen1, Yun Xiao2, Juntao Hu3,4

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A new ytterbium oxide (YbOx) buffer material enhances perovskite solar cell (PSC) efficiency and stability. This advancement in p-type/intrinsic/n-type (p-i-n) PSCs offers improved performance across various perovskite types.

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Area of Science:

  • Materials Science
  • Renewable Energy
  • Semiconductor Physics

Background:

  • Perovskite solar cells (PSCs) require charge-selective layers for efficient operation.
  • Buffer materials in p-type/intrinsic/n-type (p-i-n) PSCs facilitate electron transport and prevent degradation.
  • Existing buffer materials have limitations, necessitating novel solutions.

Purpose of the Study:

  • To introduce ytterbium oxide (YbOx) as a chemically stable and multifunctional buffer material for p-i-n PSCs.
  • To evaluate the performance and stability of PSCs utilizing YbOx buffer layers.
  • To demonstrate the broad applicability of YbOx across different perovskite absorber bandgaps.

Main Methods:

  • Scalable thermal evaporation deposition of YbOx buffer layers.
  • Fabrication and characterization of p-i-n PSCs with YbOx buffers.
  • Performance testing with narrow-, mid-, and wide-bandgap perovskite absorbers.
  • Accelerated aging tests (ISOS-L-3) on encapsulated devices.

Main Results:

  • PSCs with YbOx achieved a certified power conversion efficiency exceeding 25% with a narrow-bandgap absorber.
  • State-of-the-art efficiencies of 20.1% and 22.1% were obtained for wide- and mid-bandgap PSCs, respectively.
  • Encapsulated devices demonstrated significantly enhanced stability under accelerated aging conditions.

Conclusions:

  • YbOx is a highly effective buffer material for high-performance and stable p-i-n PSCs.
  • The material's versatility supports efficient PSCs across a spectrum of perovskite absorber types.
  • This development contributes to the advancement of durable and efficient perovskite solar technology.