Controlling the Guanidinium Cation Rotation by Cation–π Interactions

H Hannah Busch (Institute of Technical and Macromolecular Chemistry RWTH Aachen University Aachen Germany) L Lennart Günzel (Institute of Inorganic Chemistry and Crystallography Leipzig University Leipzig Germany) E Ettore Bartalucci (Institute of Technical and Macromolecular Chemistry RWTH Aachen University Aachen Germany) R Robert Schuster (Institute of Inorganic Chemistry and Crystallography Leipzig University Leipzig Germany) C Christian Zocher (Institute of Inorganic Chemistry and Crystallography Leipzig University Leipzig Germany) M Martin Börner (Institute of Inorganic Chemistry and Crystallography Leipzig University Leipzig Germany) C Chandan K. Das (Center for Theoretical Chemistry) F Florian Taube (Institute of Chemistry and Department of Life, Light & Matter University of Rostock Rostock Germany) B Björn Corzilius (Institute of Chemistry and Department of Life, Light & Matter University of Rostock Rostock Germany) M Maria Fyta (Computational Biotechnology RWTH Aachen University Aachen Germany) M Matthias Ernst (Institute of Molecular Physical Science) B Berthold Kersting (Institute of Inorganic Chemistry and Crystallography Leipzig University Leipzig Germany) T Thomas Wiegand (Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-36, 45470 Mülheim an der Ruhr, Germany)

Abstract

ABSTRACT Guanidinium plays an essential role in many disciplines of biology and chemistry, particularly due to its unique role of being engaged in a variety of molecular‐recognition events that are facilitated by the ability to participate in a broad range of noncovalent interactions. Guanidinium cations in salts or perovskite materials are known to rotate along their local symmetry axes rather fast in the order of ps , even in the solid state. We herein employ a π‐container to trap a guanidinium cation inside the aromatic cavity by cation–π interactions. X‐ray crystallography and solid‐state nuclear magnetic resonance (NMR) spectroscopy at fast magic‐angle spinning (MAS) frequencies have been utilized to probe the underlying host–guest interactions. The guanidinium motion has been fully characterized by temperature‐dependent MAS‐NMR experiments down to 100 K, as well as by a variety of further solid‐state NMR experiments, and supplemented by quantum‐chemical calculations and molecular dynamics (MD) simulations. Our data point to a restriction of the guanidinium cation rotation about the local C 3 ‐axis with correlation times in the order of ns . Our study, therefore, showcases that using the calixarene framework as a bearing for trapping a guanidinium cation, we are getting closer to the chemist's dream of controlling molecular rotations.

Article Details

Volume / Issue Vol. 65, Issue 29
Published July 13, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (13)

H

Hannah Busch

Institute of Technical and Macromolecular Chemistry RWTH Aachen University Aachen Germany

L

Lennart Günzel

Institute of Inorganic Chemistry and Crystallography Leipzig University Leipzig Germany

E

Ettore Bartalucci

Institute of Technical and Macromolecular Chemistry RWTH Aachen University Aachen Germany

R

Robert Schuster

Institute of Inorganic Chemistry and Crystallography Leipzig University Leipzig Germany

C

Christian Zocher

Institute of Inorganic Chemistry and Crystallography Leipzig University Leipzig Germany

M

Martin Börner

Institute of Inorganic Chemistry and Crystallography Leipzig University Leipzig Germany

C

Chandan K. Das

Center for Theoretical Chemistry

F

Florian Taube

Institute of Chemistry and Department of Life, Light & Matter University of Rostock Rostock Germany

B

Björn Corzilius

Institute of Chemistry and Department of Life, Light & Matter University of Rostock Rostock Germany

M

Maria Fyta

Computational Biotechnology RWTH Aachen University Aachen Germany

M

Matthias Ernst

Institute of Molecular Physical Science

B

Berthold Kersting

Institute of Inorganic Chemistry and Crystallography Leipzig University Leipzig Germany

T

Thomas Wiegand

Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34-36, 45470 Mülheim an der Ruhr, Germany