Chelation Drives Surface Substitution in Hybrid‐MXenes

V Vikash Khokhar Y Young‐Hwan Kim (Department of Chemistry Pritzker School of Molecular Engineering and James Franck Institute University of Chicago Chicago Illinois USA) A Abu Rashed Md. Shawon (Division of Materials Science and Engineering Ames National Laboratory Ames Iowa USA) F Fatemeh Karimi (Commonwealth Scientific and Industrial Research Organisation) D Danial Zangeneh (Department of Physics) Y Yongqiang Cheng (Neutron Scattering Division, Neutron Science Directorate) C Chang Liu M Murillo Longo Martins (Neutron Scattering Division) A Alexander S. Filatov R Robert F. Klie (Department of Physics) A Aaron J. Rossini (Department of Chemistry, Iowa State University, 1608 Gilman Hall, Ames, Iowa 50010, United States) J John S. Anderson D Dmitri V. Talapin D De‐en Jiang (Department of Chemical and Biomolecular Engineering Vanderbilt University Nashville Tennessee USA)

Abstract

ABSTRACT Hybrid organic–inorganic MXenes ( h ‐MXenes) offer a versatile platform for tailoring the surface chemistry of two‐dimensional transition‐metal carbides and nitrides through covalently bound organic ligands. Although monodentate amido/imido functionalization has been demonstrated previously, chelating ligand binding has remained unexplored. Here, we report the synthesis of Ti 3 C 2 (en) x h ‐MXenes via substitution of Br terminations in Ti 3 C 2 Br 2 with deprotonated ethylenediamine (en). By varying the amount of n‐BuLi used for en deprotonation, the surface coordination evolves from predominantly monodentate to bidentate binding. This transition is evidenced by a contraction of the interlayer spacing and attenuation of the ─NH 2 signal in x‐ray photoelectron spectroscopy. Solid‐state NMR reveals that bidentate coordination dominates when 4 equiv. of n‐BuLi is employed, while inelastic neutron scattering, supported by simulated vibrational spectra, provides independent confirmation of the bidentate binding motif. Density functional theory calculations show that bidentate en is significantly more stable than monodentate configurations for replacing Br terminations. Ab initio molecular dynamics further reveal dynamic surface chemistry involving proton transfer, β‐H elimination, surface imine–Ti bond formation, and partial reversion to monodentate coordination. These findings establish ligand denticity as a new design parameter for engineering MXene surface chemistry and tuning material properties.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 20, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (14)

V

Vikash Khokhar

Y

Young‐Hwan Kim

Department of Chemistry Pritzker School of Molecular Engineering and James Franck Institute University of Chicago Chicago Illinois USA

A

Abu Rashed Md. Shawon

Division of Materials Science and Engineering Ames National Laboratory Ames Iowa USA

F

Fatemeh Karimi

Commonwealth Scientific and Industrial Research Organisation

D

Danial Zangeneh

Department of Physics

Y

Yongqiang Cheng

Neutron Scattering Division, Neutron Science Directorate

C

Chang Liu

M

Murillo Longo Martins

Neutron Scattering Division

A

Alexander S. Filatov

R

Robert F. Klie

Department of Physics

A

Aaron J. Rossini

Department of Chemistry, Iowa State University, 1608 Gilman Hall, Ames, Iowa 50010, United States

J

John S. Anderson

D

Dmitri V. Talapin

D

De‐en Jiang

Department of Chemical and Biomolecular Engineering Vanderbilt University Nashville Tennessee USA