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Updated: Sep 16, 2025

Recombination Dynamics in Thin-film Photovoltaic Materials via Time-resolved Microwave Conductivity
Published on: March 6, 2017
Unveiling Charge Transfer and Recombination Dynamics in 3D/2D Heterostructure via Ultrafast Spectroscopy for
Di Li1, Junhan Xie2, Shaobing Xiong1
1School of Physics and Electronic Science, Engineering Research Center for Nanophotonics and Advanced Instrument (MOE), East China Normal University, Shanghai, 200241, China.
Abstract:
Charge transfer properties between 3D and 2D perovskite layers play a key role in determining the performance of 3D/2D heterostructure perovskite solar cells (PSCs). However, the exact photophysical behaviors at 3D/2D perovskite heterostructure remain ambiguous, which makes it challenging to form the desired 3D/2D heterostructure. Herein, via combining the state-of-the-art ultrafast spectroscopies of femtosecond transient absorption spectroscopy, transient absorption microscopy and time-resolved photoluminescence spectroscopy, charge transfer and recombination dynamics are unveiled at 3D/2D perovskite heterostructure, for comparison, where the 2D layers are fabricated through the two distinct approaches of organic ligand surface reaction (2DL) and 2D crystal seed direct deposition (2DS), respectively. 3D/2DS heterostructure exhibits superior hole transfer from 3D to 2DS, featuring a large spatial diffusion constant and high charge mobility compared to 3D/2DL, attributed to the higher phase purity and the lower defects in 2DS. Moreover, 3D/2DS heterostructure yields suppressed nonradiative recombination, reduced Langevin recombination, and increased quasi-Fermi level splitting, significantly aiding fast photoinduced charge transfer at such heterostructure. These advantages are further confirmed by a remarkably improved PSC efficiency using 3D/2DS, especially in terms of enhanced open-circuit voltage and diminished energy loss. This work sheds light on the dynamics at 3D/2D heterostructures, providing a promising guideline for designing 3D/2D high-performance PSCs.
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