Regulating Solvent Co‐Intercalation in Bi‐Layered Vanadium Oxides for Zinc Batteries by Nanoconfinement Chemistry

H Haocheng Guo (Helmholtz Institute Ulm (HIU) Helmholtzstr. 11 Ulm 89081 Germany) M Mohsen Sotoudeh (Helmholtz Institute Ulm (HIU) Helmholtzstr. 11 Ulm 89081 Germany) S Sri Rezeki (Institute for Technical Chemistry and Environmental Chemistry Friedrich‐Schiller‐University Jena Philosophenweg 7a Jena 07743 Germany) Y Yang Hu R Robert Leiter (Helmholtz Institute Ulm (HIU) Helmholtzstr. 11 Ulm 89081 Germany) J Julia Wellmann (Helmholtz Institute Ulm (HIU) Helmholtzstr. 11 Ulm 89081 Germany) M Maximilian Fichtner (Helmholtz Institute Ulm (HIU) Ulm Germany) M Martin Oschatz (Institute for Technical Chemistry and Environmental Chemistry, Friedrich-Schiller-University Jena, Philosophenweg 7a, 07743 Jena, Germany) A Axel Groß (Institute of Theoretical Chemistry University of Ulm Ulm Germany) S Simon Fleischmann (Helmholtz Institute Ulm (HIU) Helmholtzstr. 11 Ulm 89081 Germany)

Abstract

Abstract Electrochemical intercalation typically involves ion desolvation at the electrolyte–electrode interface, incurring kinetic limitations and strong ion‐host interactions. The emerging mechanism of solvent co‐intercalation, where ions intercalate together with a (partially) intact solvation shell, can mitigate these drawbacks, but has thus far been primarily explored from the viewpoint of electrolyte design. Herein, we demonstrate the feasibility of regulating solvent co‐intercalation by electrode nanoconfinement design. Through the combined effects of decreasing interlayer water of bi‐layered vanadium oxides and introducing molecules that tune the nanoconfining interlayer environment from hydrophilic to hydrophobic, the Zn 2+ intercalation properties in aqueous electrolyte are modified. Comprehensive experiments and simulations reveal progressively reduced solvation/hydration of intercalating Zn 2+ with decreasing interlayer hydrophilicity, affecting maximum capacity, redox potential, and kinetics of the electrochemical intercalation reactions. Similar electrochemical trends are observed in nonaqueous electrolytes, indicating the potential of nanoconfinement design as a universal strategy for regulating ion‐solvent (co‐)intercalation in various battery chemistries.

Article Details

Volume / Issue Vol. 65, Issue 4
Published January 22, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

H

Haocheng Guo

Helmholtz Institute Ulm (HIU) Helmholtzstr. 11 Ulm 89081 Germany

M

Mohsen Sotoudeh

Helmholtz Institute Ulm (HIU) Helmholtzstr. 11 Ulm 89081 Germany

S

Sri Rezeki

Institute for Technical Chemistry and Environmental Chemistry Friedrich‐Schiller‐University Jena Philosophenweg 7a Jena 07743 Germany

Y

Yang Hu

R

Robert Leiter

Helmholtz Institute Ulm (HIU) Helmholtzstr. 11 Ulm 89081 Germany

J

Julia Wellmann

Helmholtz Institute Ulm (HIU) Helmholtzstr. 11 Ulm 89081 Germany

M

Maximilian Fichtner

Helmholtz Institute Ulm (HIU) Ulm Germany

M

Martin Oschatz

Institute for Technical Chemistry and Environmental Chemistry, Friedrich-Schiller-University Jena, Philosophenweg 7a, 07743 Jena, Germany

A

Axel Groß

Institute of Theoretical Chemistry University of Ulm Ulm Germany

S

Simon Fleischmann

Helmholtz Institute Ulm (HIU) Helmholtzstr. 11 Ulm 89081 Germany