support@kaust.edu.sa
+966 (12) 808-3463
  • العربية
logo-black
  • Home
  • People
    • Current
    • Alumni
    • Group photos 
  • Research
  • Publications
    • 2024
    • 2023
    • 2022
    • 2021
    • 2020
    • 2019
    • 2018
    • 2017
    • 2016
    • Journal covers
  • Internship
  • News
  • KPV-LAB in the press
  • Join us
  • Contact us
breadcrumb-bg

Triarylphosphine Oxide as Cathode Interfacial Material for Inverted Perovskite Solar Cells

  1. Home
  2. Publications
  • Clear filters

Triarylphosphine Oxide as Cathode Interfacial Material for Inverted Perovskite Solar Cells

by Kai Wang, Marios Neophytou, Erkan Aydin, Mingcong Wang, Thomas Laurent, George T. Harrison, Jiang Liu, Wenzhu Liu, Michele De Bastiani, Jafar I.Khan, Thomas D. Anthopoulos, Frédéric Laquai, Stefaan De Wolf
Article Year: 2019 DOI: https://doi.org/10.1002/admi.201900434

Bibliography

Wang, K., Neophytou, M., Aydin, E., Wang, M., Laurent, T., Harrison, G. T., Liu, J., Liu, W., De Bastiani, M., Khan, J. I., Anthopoulos, T. D., Laquai, F., De Wolf, S., Triarylphosphine Oxide as Cathode Interfacial Material for Inverted Perovskite Solar Cells. Advanced Materials Interfaces 2019, 1900434.​

Abstract

​Metal halide perovskite solar cells (PSCs) in the inverted planar p‐i‐n configuration often employ phenyl‐C61‐butyric acid methyl ester (PC61BM) as electron transport layer, onto which Ag is deposited as outer electrode. However, the energy offset between PC61BM and Ag imposes an energy barrier for electron extraction. In this work, to improve the contact quality of this stack, a small organic molecule (2‐(1,10‐phenanthrolin‐3‐yl)naphth‐6‐yl)diphenylphosphine oxide (DPO) as a cathode interfacial material (CIM), inserted between PC61BM and Ag, is introduced. In devices with the indium tin oxide (ITO)/NiOx/methylammonium lead iodide (MAPbI3)/PC61BM/CIM/Ag configuration, it is found that this results in fill factor (FF) and short‐circuit current density values (JSC) that are up to ≈34% and ≈1 mA cm−2 higher, respectively, compared to DPO‐free devices. Inserting additional thin ZnO nanoparticle layers further improves the contact quality, leading to a power conversion efficiency of 18.2%. Semitransparent PSCs, utilizing DPO as an interlayer buffer layer are also realised. Resultant devices exhibit improved performance compared to DPO‐free devices. This proves that DPO withstands the sputtering of ITO, and may thus find application in perovskite‐based tandem devices. It is concluded that DPO acts as an excellent cathode modifier, opening new device‐engineering opportunities for p‐i‐n PSCs, especially in their semitransparent implementation.

Keywords

cathode interlayer interface engineering organic molecule p-i-n perovskite solar cell semitransparent solar cell
logo-white

"KAUST shall be a beacon for peace, hope and reconciliation, and shall serve the people of the Kingdom and the world."

King Abdullah bin Abdulaziz Al Saud, 1924 – 2015

Contact Us

    stefaan.dewolf@kaust.edu.sa
  • 4700 King Abdullah University of Science and Technology

    Al-Kindi (building 5), Level 3 Seaside, Right side

    Thuwal 23955-6900

    Kingdom of Saudi Arabia

Tweets by KAUST_KPVLab

© King Abdullah University of Science and Technology. All rights reserved

Privacy Policy
Terms of Use
Loading...