Visualization of Surface Charge Carrier Diffusion Lengths in Different Perovskite Crystal Orientations Using 4D Electron Imaging

Author:

Nughays Razan O.1,Yang Chen1,Nematulloev Sarvarkhodzha1,Yin Jun2,Harrison George T.3,Zhao Jianfeng14,Fatayer Shadi3,Bakr Osman M.5,Mohammed Omar F.15ORCID

Affiliation:

1. Advanced Membranes and Porous Materials Center Division of Physical Science and Engineering King Abdullah University of Science and Technology Thuwal 23955–6900 Saudi Arabia

2. Department of Applied Physics The Hong Kong Polytechnic University Kowloon Hong Kong 999077 P. R. China

3. KAUST Solar Center King Abdullah University of Science and Technology Thuwal 23955–9600 Saudi Arabia

4. State Key Laboratory of Catalysis Dalian National Laboratory for Clean Energy iChEM Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 P. R. China

5. KAUST Catalysis Center Division of Physical Sciences and Engineering King Abdullah University of Science and Technology Thuwal 23955–6900 Saudi Arabia

Abstract

AbstractUnderstanding charge carrier dynamics on the surface of materials at the nanometer and femtosecond scales is one of the key elements to optimizing the performance of light‐conversion devices, including solar cells. Unfortunately, most of the pump‐probe characterization techniques are surface‐insensitive and obtain information from the bulk due to the large penetration depth of the pulses. However, ultrafast scanning electron microscopy (USEM) is superior in visualizing carrier dynamics at the surface with high spatial‐temporal resolution. Here, the authors successfully used USEM to uncover the tremendous effect of surface orientations and termination on the charge carrier of MAPbI3 perovskite single crystals. Time‐resolved secondary electrons snapshots and density functional theory calculations clearly demonstrate that charge carrier diffusion, surface trap density, surface work function, and carrier concentration are strongly facet‐dependent. The results display a diffusion length of 22 micrometers within 6.0 nanoseconds along (001) orientation. While (100) facet forms defect states that prevent carrier diffusion and shows an increase in the surface work function leading to dark contrast and fast charge carrier recombination. These findings provide a new key component to optimizing the surface of perovskites, thus paving the way for even more efficient and stable solar‐cell devices based on perovskite single crystals.

Funder

King Abdullah University of Science and Technology

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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