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Dual-Phase Ligand Engineering Enables 18.21% FAPbI 3 Quantum Dot Solar Cells.

Authors :
Li D
Zhao C
Zhang X
Zhao X
Huang H
Li H
Li F
Yuan J
Source :
Advanced materials (Deerfield Beach, Fla.) [Adv Mater] 2025 Jan 05, pp. e2417346. Date of Electronic Publication: 2025 Jan 05.
Publication Year :
2025
Publisher :
Ahead of Print

Abstract

Formamidinium lead triiodide (FAPbI <subscript>3</subscript> ) perovskite quantum dot (PQD) are promising candidate for high-performing quantum dot photovoltaic due to its narrow bandgap, high ambient stability, and long carrier lifetime. However, the carrier transport blockage and nonradiative recombination loss, originating from the high-dielectric ligands and defects/trap states on the FAPbI <subscript>3</subscript> PQD surface, significantly limit the efficiency and stability of its photovoltaic performance. In this work, through exploring dual-site molecular ligands, namely 2-thiophenemethylammonium iodide (2-TM) and 2-thiopheneethylammonium iodide (2-TE), a dual-phase synergistic ligand exchange (DSLE) protocol consisting of both solution-phase and solid-state ligand engineering is demonstrated. The DSLE strategy effectively replaces the native long insulating ligands and simultaneously passivate surface defects in hybrid FAPbI <subscript>3</subscript> PQDs, leading to enhanced electronic coupling for efficient charge transport. Consequently, the FAPbI <subscript>3</subscript> PQD solar cell based on DSLE strategy achieves a notable enhanced efficiency from 15.43% to 17.79% (2-TM) and 18.21% (2-TE), respectively. Besides, both 2-TM and 2-TE engineered devices exhibit enhanced stability, maintaining over 80% of its initial efficiency after aging in ambient environment (20-30% humidity, 25 °C) for over 1400 h. It believes these findings will provide a new protocol to precisely regulate the surface chemistry of hybrid PQDs toward high-performance optoelectronic applications.<br /> (© 2025 Wiley‐VCH GmbH.)

Details

Language :
English
ISSN :
1521-4095
Database :
MEDLINE
Journal :
Advanced materials (Deerfield Beach, Fla.)
Publication Type :
Academic Journal
Accession number :
39757444
Full Text :
https://doi.org/10.1002/adma.202417346