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Efficient DNP at high fields and fast MAS with antenna-sensitized dinitroxides.
Niccoli, Lorenzo; Casano, Gilles; Menzildjian, Georges; Yulikov, Maxim; Robinson, Thomas; Akrial, Salah-Eddine; Wang, Zhuoran; Reiter, Christian; Purea, Armin; Siri, Didier; Venkatesh, Amrit; Emsley, Lyndon; Gajan, David; Lelli, Moreno; Ouari, Olivier; Lesage, Anne.
Affiliation
  • Niccoli L; Centre de RMN à Hauts Champs de Lyon, UMR 5082, Université de Lyon (CNRS/ENS Lyon/UCBL) 5 rue de la Doua Villeurbanne 69100 France anne.lesage@ens-lyon.fr.
  • Casano G; Center of Magnetic Resonance (CERM), University of Florence 50019 Sesto Fiorentino Italy.
  • Menzildjian G; Department of Chemistry 'Ugo Schiff', University of Florence Via della Lastruccia 13 50019 Sesto Fiorentino FI Italy.
  • Yulikov M; Consorzio Interuniversitario Risonanze Magnetiche Metalloproteine Paramagnetiche (CIRMMP) Via Luigi Sacconi 6 50019 Sesto Fiorentino FI Italy moreno.lelli@unifi.it.
  • Robinson T; Aix Marseille Uni, CNRS, ICR 13013 Marseille France olivier.ouari@univ-amu.fr.
  • Akrial SE; Centre de RMN à Hauts Champs de Lyon, UMR 5082, Université de Lyon (CNRS/ENS Lyon/UCBL) 5 rue de la Doua Villeurbanne 69100 France anne.lesage@ens-lyon.fr.
  • Wang Z; Department of Chemistry and Applied Biosciences, Eidgenössische Technische Hochschule Zürich CH-8093 Zürich Switzerland.
  • Reiter C; Centre de RMN à Hauts Champs de Lyon, UMR 5082, Université de Lyon (CNRS/ENS Lyon/UCBL) 5 rue de la Doua Villeurbanne 69100 France anne.lesage@ens-lyon.fr.
  • Purea A; Centre de RMN à Hauts Champs de Lyon, UMR 5082, Université de Lyon (CNRS/ENS Lyon/UCBL) 5 rue de la Doua Villeurbanne 69100 France anne.lesage@ens-lyon.fr.
  • Siri D; Centre de RMN à Hauts Champs de Lyon, UMR 5082, Université de Lyon (CNRS/ENS Lyon/UCBL) 5 rue de la Doua Villeurbanne 69100 France anne.lesage@ens-lyon.fr.
  • Venkatesh A; Bruker Biospin 76275 Ettlingen Germany.
  • Emsley L; Bruker Biospin 76275 Ettlingen Germany.
  • Gajan D; Aix Marseille Uni, CNRS, ICR 13013 Marseille France olivier.ouari@univ-amu.fr.
  • Lelli M; Laboratory of Magnetic Resonance, Institut des Sciences et Ingénierie Chimiques, École Polytechnique Fédérale de Lausanne (EPFL) CH-1015 Lausanne Switzerland.
  • Ouari O; National High Magnetic Field Laboratory, Florida State University Tallahassee FL 32310 USA.
  • Lesage A; Laboratory of Magnetic Resonance, Institut des Sciences et Ingénierie Chimiques, École Polytechnique Fédérale de Lausanne (EPFL) CH-1015 Lausanne Switzerland.
Chem Sci ; 2024 Sep 12.
Article in En | MEDLINE | ID: mdl-39309076
ABSTRACT
Dynamic Nuclear Polarization (DNP) can significantly enhance the sensitivity of solid-state NMR. In DNP, microwave irradiation induces polarization transfer from unpaired electron spins to 1H nuclear spins via hyperfine couplings and spin-diffusion. The structure of the polarizing agents that host the electron spins is key for DNP efficiency. Currently, only a handful of structures perform well at very high magnetic fields (≥18.8 T), and enhancements are significantly lower than those obtained at lower fields. Here, we introduce a new series of water-soluble nitroxide biradicals with a scaffold augmented by dihydroxypropyl antenna chains that perform significantly better than previous dinitroxides at 18.8 T. The new radical M-TinyPol(OH)4 yields enhancement factors of ∼220 at 18.8 T and 60 kHz MAS, which is a nearly factor 2 larger than for the previous best performing dinitroxides. The performance is understood through 2H ESEEM measurements to probe solvent accessibility, supported by Molecular Dynamics simulations, and by experiments on deuterated samples. We find that the deuterated glycerol molecules in the matrix are located mainly in the second solvation shell of the NO bond, limiting access for protonated water molecules, and restricting spin diffusion pathways. This provides a rational understanding of why the dihydroxypropyl chains present in the best-performing structures are essential to deliver the polarization to the bulk solution.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Chem Sci Year: 2024 Document type: Article Country of publication: United kingdom

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Chem Sci Year: 2024 Document type: Article Country of publication: United kingdom