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  4. F14 - Faculty of Biochemistry, Chemistry and Pharmacy
  5. Faculty of Biochemistry, Chemistry and Pharmacy: Research Data
  6. PELDOR on multi-nitroxide model compounds
 
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Title(s)
TitleLanguage
PELDOR on multi-nitroxide model compounds
en
 
Author(s)
NameORCIDGNDAffiliation
Bretschneider, Matthias
Physical and Theoretical Chemistry 
Plackmeyer, Jörn
Physical and Theoretical Chemistry 
Endeward, Burkhard orcid-logo
0000-0001-7790-1024
Physical and Theoretical Chemistry 
Prisner, Thomas F.
0000-0003-2850-9573
Physical and Theoretical Chemistry 
 
Faculty
14 Biochemistry, Chemistry and Pharmacy
 
DFG-Subject
323-01 Physical Chemistry of Molecules, Liquids and Interfaces, Biophysical Chemistry
 
Date Issued
31 January 2025
 
Publisher(s)
Goethe-Universität Frankfurt
 
Handle
https://gude.uni-frankfurt.de/handle/gude/467
 
DOI
10.25716/gude.1fc0-dz9=
 

Type(s) of data
Dataset
 
Language(s)
en
 
Subject Keyword(s)
  • PELDOR

  • EPR

  • DEER

  • Multi-Spin-Effects

 
Abstract(s)
AbstractLanguage
We investigated the accuracy and limitation of using the modulation depth of pulsed electron-electron double resonance experiments to count the number of coupled spins. For this purpose synthesized multi-nitroxide molecules with two to six spins were used. We could show that the main limitation on accurately counting larger number of coupled spins at Q-band frequencies is determined by the reproducibility of adjusting and calibrating the pump pulse excitation efficiency. Contrariwise, with broadband sech/tanh or short 10 ns rectangular pump pulses modulation depth suppression effects arising from non-ideal coverage of the dipolar-split signals can be avoided for molecules with intra-molecular spin distances larger than 2nm. The transverse relaxation times for our model compounds with one to six spins did not depend on the spin number and were all the same. Nevertheless, the signal intensity of the primary Hahn echo signal in a 4-pulse PELDOR sequence decreased strongly with the number of coupled spins. This is due to the dipolar defocusing if more than one spin is excited by the first two pulses at the detection frequency, resulting in a loss of refocused echo intensity of the PELDOR experiments. This effect further reduces the accuracy of using the PELDOR modulation depth for spin counting. Altogether, our results demonstrate, that this method can potentially be applied for application up to hexameric complexes.
en
 
Description(s)
DescriptionLanguage
EPR datasets in Bruker DSC/DTA format. PELDOR/DEER time traces, T2-echo decay data
en
 

Funder(s)
NameType of identifierFunder identifierAward numberAward titleAward URI
Deutsche Forschungsgemeinschaft, DFG
Crossref Funder ID
471089264
 

License
Creative Commons Attribution-NonCommercial 4.0 International (CC BY-NC 4.0) cclicense-logocclicense-logocclicense-logo
 

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May 9, 2025
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May 9, 2025
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