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Compact-porous hole-transport-layer for highly efficient near-infrared region transparent perovskite solar cells for tandem applications

Title
Compact-porous hole-transport-layer for highly efficient near-infrared region transparent perovskite solar cells for tandem applications
Author(s)
Tyagi, BarkhaKumar, NeeteshLee, Hock BengSong, Young MinCho, SinyoungLee, Jong-SooKang, Jae-Wook
Issued Date
2023-10
Citation
Journal of Alloys and Compounds, v.960
Type
Article
Author Keywords
Energy band structure tailoringNIR-transparencySemitransparent perovskite solar cellsSpray-coatingTandem solar cells
Keywords
NICKEL-OXIDEIMPROVED STABILITYNIOXBILAYEREXTRACTIONINTERFACESFILMSCOST
ISSN
0925-8388
Abstract
Wide-bandgap perovskites solar cells (PSCs) are vital as top cells in perovskite-based tandem solar cells (TSCs). However, poor band alignment with the charge transport layer and unwanted parasitic absorption in the top semitransparent-PSC (ST-PSC) are major factors limiting the power conversion efficiency (PCE) of TSCs. Herein, we present a compact-porous nickel oxide (cp-NiOx) hole-transport layer (HTL) sequentially fabricated using a sol-gel suspension and colloidal suspension of highly crystalline NiOx. The cp-NiOx film exhibited enhanced transparency, mesoporous surface morphology, and better energy band alignment with a 1.68 eV perovskite film for fabricating highly near-infrared transparent (∼92 % (@800–1200 nm)) ST-PSCs. The best cell achieved a PCE of 15.9 %. In addition, a four-terminal perovskite/silicon TSC based on the cp-NiOx HTL achieved an outstanding PCE of ∼26.0 %. The tailored energy band structure and reduced parasitic absorption in the near-infrared region of the ST-PSCs based on the cp-NiOx HTL enabled fabrication of highly efficient inverted ST-PSCs for perovskite/silicon TSCs. © 2023 Elsevier B.V.
URI
http://hdl.handle.net/20.500.11750/47592
DOI
10.1016/j.jallcom.2023.170970
Publisher
Elsevier
Related Researcher
  • 이종수 Lee, Jong-Soo
  • Research Interests Design of new type of multifunctional nanoparticles for energy-related devices; 다기능성 나노재료; 무기물 태양전지; 열전소자
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Department of Energy Science and Engineering MNEDL(Multifunctional Nanomaterials & Energy Devices Lab) 1. Journal Articles

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