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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Materials Map under construction

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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1.080 Topics available

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (4/4 displayed)

  • 2021Dye-sensitized solar cells based on Fe N-heterocyclic carbene photosensitizers with improved rod-like push-pull functionality29citations
  • 2020Hot branching dynamics in a light‐harvesting iron carbene complex revealed by ultrafast x‐ray emission spectroscopy16citations
  • 2020Hot branching dynamics in a light‐harvesting iron carbene complex revealed by ultrafast x‐ray emission spectroscopy54citations
  • 2019Hot Branching Dynamics in a Light-Harvesting Iron Carbene Complex Revealed by Ultrafast X-ray Emission Spectroscopy.54citations

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Kjaer, Kasper S.
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Sheibani, Esmaeil
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Boschloo, Gerrit
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Uhlig, Jens
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Prakash, Om
4 / 9 shared
Freitag, Marina
1 / 7 shared
Yartsev, Arkady
1 / 15 shared
Wärnmark, Kenneth
4 / 12 shared
Rosemann, Nils W.
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Lindh, Linnea
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Fan, Hao
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Lomoth, Reiner
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Gupta, Arvind Kumar
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Benesperi, Iacopo
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Persson, Petter
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Persson, Samuel
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Michaels, Hannes
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Co-Authors (by relevance)

  • Kjaer, Kasper S.
  • Sheibani, Esmaeil
  • Boschloo, Gerrit
  • Uhlig, Jens
  • Prakash, Om
  • Freitag, Marina
  • Yartsev, Arkady
  • Wärnmark, Kenneth
  • Rosemann, Nils W.
  • Lindh, Linnea
  • Fan, Hao
  • Lomoth, Reiner
  • Gupta, Arvind Kumar
  • Benesperi, Iacopo
  • Persson, Petter
  • Chábera, Pavel
  • Persson, Samuel
  • Michaels, Hannes
OrganizationsLocationPeople

article

Hot branching dynamics in a light‐harvesting iron carbene complex revealed by ultrafast x‐ray emission spectroscopy

  • Canton, Sophie E.
  • Németh, Zoltán
  • Laursen, Mads
  • Nelson, Silke
  • Sikorski, Marcin
  • Bajnóczi, Éva
  • Gordivska, Olga
  • Uhlig, Jens
  • Tatsuno, Hideyuki
  • Prakash, Om
  • Reinhard, Marco E.
  • Hansen, Frederik Beyer Kjær
  • Vankó, György
  • Glownia, James
  • Driel, Tim B. Van
  • Cordones, Amy
  • Hartsock, Robert W.
  • Ougaard Dohn, Asmus
  • Szemes, Dorottya Sárosiné
  • Sokaras, Dimosthenis
  • Li, Lin
  • Møller, Klaus Braagaard
  • Gaffney, Kelly J.
  • Vester, Peter
  • Guo, Meiyuan
  • Kunnus, Kristjan
  • Christensen, Morten
  • Lemke, Henrik Till
  • Wärnmark, Kenneth
  • Haldrup, Kristoffer
  • Koroidov, Sergey
  • Harlang, Tobias C. B.
  • Timm, Cornelia
  • Fredin, Lisa A.
  • Kjær, Kasper Skov
  • Sundström, Villy
  • Liu, Yizhu
  • Persson, Petter
  • Chabera, Pavel
  • Alonso-Mori, Roberto
  • Nielsen, Martin Meedom
Abstract

Iron nitrogen heterocyclic carbenes (NHC) have received a great deal of attention recently, due to their growing potential as e.g light sensitizers and photocatalysts. We present a sub-ps x-ray spectroscopy study of a Fe<sup>II</sup>NHC complex allowing us to identify and quantify the states involved in the deactivation cascade after light absorption. We find that excited molecules relax back to the ground state populating first the <sup>3</sup>MLCT and then along two pathways the <sup>3</sup>MC state. One of these pathways is ultrafast (~150 fs) for ~30% of the excited molecules, in competition with vibrational relaxation and cooling, followed by a much slower (7.6 ps) decay of the relaxed <sup>3</sup>MLCT state. The <sup>3</sup>MC state then rapidly (2.2 ps) decays to the ground state. The ultrafast deactivation of the <sup>3</sup>MLCT state constitutes a loss channel from the point of view of photochemical efficiency and highlights the necessity to screen other FeNHC complexes (and perhaps other transition metal complexes) for this ultrafast decay of <sup>3</sup>MLCT population, in order to optimize photochemical performance.

Topics
  • impedance spectroscopy
  • Nitrogen
  • iron
  • X-ray spectroscopy