Fabrication of tin-based halide perovskites by pulsed laser deposition

Mixed-organic-cation perovskite absorbers as formamidinium doped methylammonium tin iodine ( NH 2 CH ) 1 - x ( CH 3 NH 3 ) x SnI 3 ( x ≤ 1 ) can provide a pathway to highly efficient lead-free solar cells. Although this class of materials is known to be severely susceptible to degradation, induced a...

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Veröffentlicht in:Applied physics. A, Materials science & processing Materials science & processing, 2020-07, Vol.126 (7), Article 553
Hauptverfasser: Hoffmann-Urlaub, Sarah, Zhang, Yaodong, Wang, Zhaodong, Kressdorf, Birte, Meyer, Tobias
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container_title Applied physics. A, Materials science & processing
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creator Hoffmann-Urlaub, Sarah
Zhang, Yaodong
Wang, Zhaodong
Kressdorf, Birte
Meyer, Tobias
description Mixed-organic-cation perovskite absorbers as formamidinium doped methylammonium tin iodine ( NH 2 CH ) 1 - x ( CH 3 NH 3 ) x SnI 3 ( x ≤ 1 ) can provide a pathway to highly efficient lead-free solar cells. Although this class of materials is known to be severely susceptible to degradation, induced among others by enhanced temperatures, humidity and illumination, an improved layer quality in view of crystal size and homogeneity is the key to diminish or even to block certain degradation channels. In this work, we present the fabrication of fully tin-based perovskites via pulsed laser deposition. The morphology is analyzed for different deposition energies and temperatures to find the optimum process window. The thin films already reveal crystalline structure at room temperature, while they are smooth and homogeneous above a critical thickness for carefully adapted deposition parameters. In contrast to the assumption that at elevated temperatures, the crystallinity is improved, and we find that the films reveal a strong organic depletion and simultaneously tin enrichment. As a measure for their suitability to be employed as photovoltaic absorbers, the band gap of the differently doped perovskites is estimated by spectroscopic ellipsometry in the range of 1.3 to 1.4 eV.
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subjects Absorbers
Applied physics
Characterization and Evaluation of Materials
Condensed Matter Physics
Crystal structure
Crystallinity
Current State-Of-The-Art in Laser Ablation
Degradation
Depletion
High temperature
Homogeneity
Iodine
Lead free
Machines
Manufacturing
Materials science
Morphology
Nanotechnology
Optical and Electronic Materials
Perovskites
Photovoltaic cells
Physics
Physics and Astronomy
Processes
Pulsed laser deposition
Pulsed lasers
Room temperature
S.I. : Current State-Of-The-Art in Laser Ablation
Solar cells
Spectroellipsometry
Surfaces and Interfaces
Thin Films
title Fabrication of tin-based halide perovskites by pulsed laser deposition
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