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Manipulating Crystallization Kinetics in High-Performance Blade-Coated Perovskite Solar Cells via Cosolvent-Assisted Phase Transition

  • Qiong Liang
  • , Kuan Liu*
  • , Mingzi Sun
  • , Zhiwei Ren
  • , Patrick W. K. Fong
  • , Jiaming Huang
  • , Minchao Qin
  • , Zehan Wu
  • , Dong Shen
  • , Chun-Sing Lee
  • , Jianhua Hao
  • , Xinhui Lu
  • , Bolong Huang*
  • , Gang Li*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Manipulating the perovskite solidification process, including nucleation and crystal growth, plays a critical role in controlling film morphology and thus affects the resultant device performance. In this work, a facile and effective ethyl alcohol (EtOH) cosolvent strategy is demonstrated with the incorporation of EtOH into perovskite ink for high-performance room-temperature blade-coated perovskite solar cells (PSCs) and modules. Systematic real-time perovskite crystallization studies uncover the delicate perovskite structural evolutions and phase-transition pathway. Time-resolved X-ray diffraction and density functional theory calculations both demonstrate that EtOH in the mixed-solvent system significantly promotes the formation of an FA-based precursor solvate (FA2PbBr4⋅DMSO) during the trace-solvent-assisted transition process, which finely regulates the balance between nucleation and crystal growth to guarantee high-quality perovskite films. This strategy efficiently suppresses nonradiative recombination and improves efficiencies in both 1.54 (23.19%) and 1.60 eV (22.51%) perovskite systems, which represents one of the highest records for blade-coated PSCs in both small-area devices and minimodules. An excellent VOC deficit as low as 335 mV in the 1.54 eV perovskite system, coincident with the measured nonradiative recombination loss of only 77 mV, is achieved. More importantly, significantly enhanced device stability is another signature of this approach.
Original languageEnglish
Article number2200276
JournalAdvanced Materials
Volume34
Issue number16
Online published14 Mar 2022
DOIs
Publication statusPublished - 21 Apr 2022

Funding

K.L. and G.L. thank the Research Grants Council of Hong Kong (GRF Grant Nos. 15218517, CRF C5037-18G, and PDFS2021-5S04), the Shenzhen Science and Technology Innovation Commission (Project No. JCYJ 20200109105003940), the Sir Sze-yuen Chung Endowed Professorship Fund (8-8480) provided by the Hong Kong Polytechnic University, and Guangdong Basic Research Foundation (2020A1515110156). B.H. thanks the support of the Natural Science Foundation of China (NSFC 21771156). X.L. thanks the Research Grants Council of Hong Kong (GRF Grant No. 14314216).

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Research Keywords

  • blade coating
  • cosolvents
  • crystallization kinetics
  • ethyl alcohol
  • nonradiative recombination
  • perovskite solar cells
  • trace-solvent-assisted transition
  • BASE ADDUCT
  • EFFICIENT
  • FABRICATION
  • DEPOSITION
  • IMPROVES
  • CATION
  • LAYERS

RGC Funding Information

  • RGC-funded

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