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Conductive colloidal perovskite quantum dot inks towards fast printing of solar cells

Author

Listed:
  • Xuliang Zhang

    (Soochow University
    Soochow University)

  • Hehe Huang

    (Soochow University
    Soochow University)

  • Chenyu Zhao

    (Soochow University
    Soochow University)

  • Lujie Jin

    (Soochow University
    Soochow University)

  • Chihyung Lee

    (Sungkyunkwan University)

  • Youyong Li

    (Soochow University
    Soochow University)

  • Doo-Hyun Ko

    (Sungkyunkwan University)

  • Wanli Ma

    (Soochow University
    Soochow University)

  • Tom Wu

    (The Hong Kong Polytechnic University)

  • Jianyu Yuan

    (Soochow University
    Soochow University)

Abstract

Quantum dot (QD) provides a versatile platform for high-throughput processing of semiconductors for large-area optoelectronic applications. Unfortunately, the QD solar cell is hampered by the time-consuming layer-by-layer process, a major challenge in manufacturing printable devices. Here we demonstrate a sequential acylation-coordination protocol including amine-assisted ligand removal and Lewis base-coordinated surface restoration to synthesize conductive APbI3 (A = formamidinium (FA), Cs or methylammonium) colloidal perovskite QD (PeQD) inks that enable one-step PeQD film deposition without additional solid-state ligand exchange. The resultant PeQD film displays uniform morphology with elevated electronic coupling, more ordered structure and homogeneous energy landscape. Narrow-bandgap FAPbI3 PeQD-based solar cells achieve a champion efficiency of 16.61% (certified 16.20%), exceeding the values obtained with other QD inks and layer-by-layer processes. The conductive PeQD inks are compatible with large-area device (9 × 9 cm2) fabrication using the blade-coating technique with a speed up to 50 mm s−1.

Suggested Citation

  • Xuliang Zhang & Hehe Huang & Chenyu Zhao & Lujie Jin & Chihyung Lee & Youyong Li & Doo-Hyun Ko & Wanli Ma & Tom Wu & Jianyu Yuan, 2024. "Conductive colloidal perovskite quantum dot inks towards fast printing of solar cells," Nature Energy, Nature, vol. 9(11), pages 1378-1387, November.
  • Handle: RePEc:nat:natene:v:9:y:2024:i:11:d:10.1038_s41560-024-01608-5
    DOI: 10.1038/s41560-024-01608-5
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