Dye-sensitized solar cells based on Fe N-heterocyclic carbene photosensitizers with improved rod-like push-pull functionality

A new generation of octahedral iron( ii )-N-heterocyclic carbene (NHC) complexes, employing different tridentate C^N^C ligands, has been designed and synthesized as earth-abundant photosensitizers for dye sensitized solar cells (DSSCs) and related solar energy conversion applications. This work intr...

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Veröffentlicht in:Chemical science (Cambridge) 2021-12, Vol.12 (48), p.1635-1653
Hauptverfasser: Lindh, Linnea, Gordivska, Olga, Persson, Samuel, Michaels, Hannes, Fan, Hao, Chábera, Pavel, Rosemann, Nils W, Gupta, Arvind Kumar, Benesperi, Iacopo, Uhlig, Jens, Prakash, Om, Sheibani, Esmaeil, Kjaer, Kasper S, Boschloo, Gerrit, Yartsev, Arkady, Freitag, Marina, Lomoth, Reiner, Persson, Petter, Wärnmark, Kenneth
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Sprache:eng
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Zusammenfassung:A new generation of octahedral iron( ii )-N-heterocyclic carbene (NHC) complexes, employing different tridentate C^N^C ligands, has been designed and synthesized as earth-abundant photosensitizers for dye sensitized solar cells (DSSCs) and related solar energy conversion applications. This work introduces a linearly aligned push-pull design principle that reaches from the ligand having nitrogen-based electron donors, over the Fe( ii ) centre, to the ligand having an electron withdrawing carboxylic acid anchor group. A combination of spectroscopy, electrochemistry, and quantum chemical calculations demonstrate the improved molecular excited state properties in terms of a broader absorption spectrum compared to the reference complex, as well as directional charge-transfer displacement of the lowest excited state towards the semiconductor substrate in accordance with the push-pull design. Prototype DSSCs based on one of the new Fe NHC photosensitizers demonstrate a power conversion efficiency exceeding 1% already for a basic DSSC set-up using only the I − /I 3 − redox mediator and standard operating conditions, outcompeting the corresponding DSSC based on the homoleptic reference complex. Transient photovoltage measurements confirmed that adding the co-sensitizer chenodeoxycholic acid helped in improving the efficiency by increasing the electron lifetime in TiO 2 . Time-resolved spectroscopy revealed spectral signatures for successful ultrafast (
ISSN:2041-6520
2041-6539
2041-6539
DOI:10.1039/d1sc02963k