Tracking Structural and Electron Spin Density Changes in a Cooperative Mn <sup>3+</sup> Spin Crossover Complex at Atomic Scale via Low Temperature Solid‐State NMR

W Wassilios Papawassiliou (Univ. Grenoble Alpes, CEA, CNRS, IRIG, MEM) J José P. Carvalho (Department of Materials and Environmental Chemistry) S Subhradip Paul (Univ. Grenoble Alpes, CEA, CNRS, IRIG, MEM) A Aizuddin Sultan (School of Chemistry University College Dublin Belfield Dublin 4 Ireland) M Michael Fardis (Institute of Nanoscience and Nanotechnology NCSR “DEMOKRITOS” 153 41 Ag. Paraskevi – Attiki Athens Greece) G Georgios Papavassiliou (Institute of Nanoscience and Nanotechnology NCSR “DEMOKRITOS” 153 41 Ag. Paraskevi – Attiki Athens Greece) G Grace G. Morgan (School of Chemistry University College Dublin Belfield Dublin 4 Ireland) K Katharina Märker (Univ Grenoble Alpes, CEA, IRIG, MEM Grenoble 38000 France) G Gaël De Paëpe (Univ. Grenoble Alpes, CEA, CNRS, IRIG, MEM)

Abstract

Abstract Electron spin‐state changes in transition‐metal (TM) complexes underpin many biochemical processes and molecular spin‐control technologies. Such transitions, triggered by external stimuli like temperature, light, or pressure, alter both the molecular structure and electron spin density (ESD) distribution. Paramagnetic NMR offers atomic‐scale insights into these changes, yet traditional solution‐state measurements bear limitations due to solvent effects, unaccounted lattice cooperativity, and inaccessibility at cryogenic temperatures. We overcome these limitations by extending the approach to spinning solids at cryogenic temperatures. Specifically, we report high‐resolution 13 C and 1 H magic‐angle spinning (MAS) NMR spectra of a mononuclear spin‐crossover (SCO) Mn(III) complex across the SCO transition at 130 K. Such low‐temperature experiments are particularly challenging because paramagnetic shift and shift anisotropy are inversely proportional to the temperature. The experimental findings are supported by advanced quantum chemical calculations of the NMR and EPR parameters to assign and rationalize the observed paramagnetic shifts. Additionally, monitoring selected 1 H resonances upon heating and cooling through the transition provides access to the order parameter (), revealing hysteresis behavior similar to the magnetic susceptibility measurements. This work demonstrates that paramagnetic NMR combined with quantum chemical calculations provides a unique route to probing SCO at the atomic level.

Article Details

Volume / Issue Vol. 65, Issue 3
Published January 16, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

W

Wassilios Papawassiliou

Univ. Grenoble Alpes, CEA, CNRS, IRIG, MEM

J

José P. Carvalho

Department of Materials and Environmental Chemistry

S

Subhradip Paul

Univ. Grenoble Alpes, CEA, CNRS, IRIG, MEM

A

Aizuddin Sultan

School of Chemistry University College Dublin Belfield Dublin 4 Ireland

M

Michael Fardis

Institute of Nanoscience and Nanotechnology NCSR “DEMOKRITOS” 153 41 Ag. Paraskevi – Attiki Athens Greece

G

Georgios Papavassiliou

Institute of Nanoscience and Nanotechnology NCSR “DEMOKRITOS” 153 41 Ag. Paraskevi – Attiki Athens Greece

G

Grace G. Morgan

School of Chemistry University College Dublin Belfield Dublin 4 Ireland

K

Katharina Märker

Univ Grenoble Alpes, CEA, IRIG, MEM Grenoble 38000 France

G

Gaël De Paëpe

Univ. Grenoble Alpes, CEA, CNRS, IRIG, MEM