Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (3/3 displayed)

  • 2023In Situ IR SpectroscopyStudies of AtomicLayer-Deposited SnO2 on Formamidinium-Based Lead Halide Perovskite20citations
  • 2022Growth Mechanism and Film Properties of Atomic-Layer-Deposited Titanium Oxysulfide6citations
  • 2022Growth Mechanism and Film Properties of Atomic-Layer-Deposited Titanium Oxysulfide6citations

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Creatore, Mariadriana
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Jansen, Jarvi W. P.
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Tao, Shuxia
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Brocks, Geert H. L. A.
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Kessels, W. M. M.
2 / 161 shared
Zardetto, V.
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Basuvalingam, Saravana Balaji
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Mattinen, Miika Juhana
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Macco, Bart
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Kasteren, Jeroen G. A. Van
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Bol, Ageeth
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Van Kasteren, Jeroen G. A.
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Co-Authors (by relevance)

  • Creatore, Mariadriana
  • Jansen, Jarvi W. P.
  • Tao, Shuxia
  • Brocks, Geert H. L. A.
  • Kessels, W. M. M.
  • Zardetto, V.
  • Basuvalingam, Saravana Balaji
  • Mattinen, Miika Juhana
  • Macco, Bart
  • Kasteren, Jeroen G. A. Van
  • Bol, Ageeth
  • Basuvalingam, Saravana B.
  • Mattinen, Miika
  • Kessels, Wilhelmus M. M.
  • Van Kasteren, Jeroen G. A.
  • Bol, Ageeth A.
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article

In Situ IR SpectroscopyStudies of AtomicLayer-Deposited SnO2 on Formamidinium-Based Lead Halide Perovskite

  • Creatore, Mariadriana
  • Jansen, Jarvi W. P.
  • Tao, Shuxia
  • Bracesco, Andrea E. A.
  • Brocks, Geert H. L. A.
  • Kessels, W. M. M.
  • Zardetto, V.
Abstract

Perovskite photovoltaics has achieved conversion efficiencies of 26.0% by optimizing the optoelectronic properties of the absorber and its interfaces with charge transport layers (CTLs). However, commonly adopted organic CTLs can lead to parasitic absorption and device instability. Therefore, metal oxides like atomic layer-deposited (ALD) SnO2 in combination with fullerene-based electron transport layers have been introduced to enhance mechanical and thermal stability. Instead, when ALD SnO2 is directly processed on the absorber, i.e., without the fullerene layer, chemical modifications of the inorganic fraction of the perovskite occur, compromising the device performance. This study focuses on the organic fraction, particularly the formamidinium cation (FA+), in a CsFAPb(I,Br)3 perovskite. By employing in situ infrared spectroscopy, we investigate the impact of ALD processing on the perovskite, such as vacuum level, temperature, and exposure to half and full ALD cycles using tetrakis(dimethylamido)-Sn(IV) (TDMA-Sn) and H2O. We observe that exposing the absorber to vacuum conditions or water half-cycles has a negligible effect on the chemistry of the perovskite. However, prolonged exposure at 100 °C for 90 min results in a loss of 0.7% of the total formamidinium-related vibrational features compared to the pristine perovskite. Supported by density functional theory calculations, we speculate that FA+ deprotonates and that formamidine desorbs from the perovskite surface. Furthermore, the interaction between TDMA-Sn and FA+ induces more decomposition of the perovskite surface compared to vacuum, temperature, or H2O exposure. During the exposure to 10 ALD half-cycles of TDMA-Sn, 4% of the total FA+-related infrared features are lost compared to the pristine perovskite. Additionally, IR spectroscopy suggests the formation and trapping of sym-triazine, i.e., a decomposition product of FA+. These studies enable to decouple the effects occurring during direct ALD processing on the perovskite and highlight the crucial role of the Sn precursor in affecting the perovskite surface chemistry and compromising the device performance.

Topics
  • density
  • perovskite
  • impedance spectroscopy
  • surface
  • theory
  • density functional theory
  • decomposition
  • infrared spectroscopy