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Energy dispersive XAFS: characterization of electronically excited states of Copper(I) complexes

Energy dispersive XAFS: characterization of electronically excited states of Copper(I) complexes
Energy dispersive XAFS: characterization of electronically excited states of Copper(I) complexes
Energy dispersive X-ray absorption spectroscopy (ED-XAS), in which the whole XAS spectrum is acquired simultaneously, has been applied to reduce the real-time for acquisition of spectra of photoinduced excited states by using a germanium microstrip detector gated around one X-ray bunch of the ESRF (100 ps). Cu K-edge XAS was used to investigate the MLCT states of [Cu(dmp)2]+ (dmp =2,9-dimethyl-1,10-phenanthroline) and [Cu(dbtmp)2]+ (dbtmp =2,9-di-n-butyl-3,4,7,8-tetramethyl-1,10-phenanthroline) with the excited states created by excitation at 450 nm (10 Hz). The decay of the longer lived complex with bulky ligands, was monitored for up to 100 ns. DFT calculations of the longer lived MLCT excited state of [Cu(dbp)2]+ (dbp =2,9-di-n-butyl-1,10-phenanthroline) with the bulkier diimine ligands, indicated that the excited state behaves as a Jahn–Teller distorted Cu(II) site, with the interligand dihedral angle changing from 83 to 60° as the tetrahedral coordination geometry flattens and a reduction in the Cu–N distance of 0.03 Å.
1520-6106
7381-7387
Tromp, Moniek
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Dent, Andrew J.
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Headspith, Jon
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Easun, Timothy L.
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Sun, Xue-Zhong
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George, Michael W.
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Mathon, Olivier
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Smolentsev, Grigory
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Hamilton, Michelle L.
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Evans, John
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Tromp, Moniek
48c1ebbb-579c-42b6-83bb-7188c668b322
Dent, Andrew J.
24c2a218-cb0e-4193-af0b-3ff1dc42b552
Headspith, Jon
e7e5304a-94b0-4fa7-b270-7120107df44e
Easun, Timothy L.
e1a55858-af05-4ead-817c-d8ab83f22f92
Sun, Xue-Zhong
8070ac48-bcb1-4c1f-9e05-7fe8bf857d0e
George, Michael W.
09040935-b1da-4a63-ad2e-5ba29e39f80a
Mathon, Olivier
e3dccee1-b069-4c6a-99be-1cdfdea58dc2
Smolentsev, Grigory
0b315260-9b2b-4ac3-b7a0-96eb0b727b60
Hamilton, Michelle L.
e9d19830-8866-43c6-bda7-72a30a269b21
Evans, John
05890433-0155-49fe-a65d-38c90ea25c69

Tromp, Moniek, Dent, Andrew J., Headspith, Jon, Easun, Timothy L., Sun, Xue-Zhong, George, Michael W., Mathon, Olivier, Smolentsev, Grigory, Hamilton, Michelle L. and Evans, John (2013) Energy dispersive XAFS: characterization of electronically excited states of Copper(I) complexes. The Journal of Physical Chemistry B, 117 (24), 7381-7387. (doi:10.1021/jp4020355).

Record type: Article

Abstract

Energy dispersive X-ray absorption spectroscopy (ED-XAS), in which the whole XAS spectrum is acquired simultaneously, has been applied to reduce the real-time for acquisition of spectra of photoinduced excited states by using a germanium microstrip detector gated around one X-ray bunch of the ESRF (100 ps). Cu K-edge XAS was used to investigate the MLCT states of [Cu(dmp)2]+ (dmp =2,9-dimethyl-1,10-phenanthroline) and [Cu(dbtmp)2]+ (dbtmp =2,9-di-n-butyl-3,4,7,8-tetramethyl-1,10-phenanthroline) with the excited states created by excitation at 450 nm (10 Hz). The decay of the longer lived complex with bulky ligands, was monitored for up to 100 ns. DFT calculations of the longer lived MLCT excited state of [Cu(dbp)2]+ (dbp =2,9-di-n-butyl-1,10-phenanthroline) with the bulkier diimine ligands, indicated that the excited state behaves as a Jahn–Teller distorted Cu(II) site, with the interligand dihedral angle changing from 83 to 60° as the tetrahedral coordination geometry flattens and a reduction in the Cu–N distance of 0.03 Å.

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Published date: 29 May 2013
Organisations: Organic Chemistry: Synthesis, Catalysis and Flow

Identifiers

Local EPrints ID: 362451
URI: http://eprints.soton.ac.uk/id/eprint/362451
ISSN: 1520-6106
PURE UUID: 103bbc44-78cf-4009-8cf3-dc035e53990e
ORCID for John Evans: ORCID iD orcid.org/0000-0003-3290-7785

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Date deposited: 25 Feb 2014 10:02
Last modified: 29 Oct 2024 02:32

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Contributors

Author: Moniek Tromp
Author: Andrew J. Dent
Author: Jon Headspith
Author: Timothy L. Easun
Author: Xue-Zhong Sun
Author: Michael W. George
Author: Olivier Mathon
Author: Grigory Smolentsev
Author: Michelle L. Hamilton
Author: John Evans ORCID iD

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