Inducing Room Temperature Ferromagnetism in Phyllosilicates via Iron Implantation

Abstract The modulation of intrinsic two-dimensional (2D) ferromagnetism has attracted significant attention due to its potential applications in spintronics and magnetic field sensing. However, the limited availability of intrinsically magnetic 2D materials has driven the exploration of external approaches, including chemical doping, proximity effects, defect engineering, and strain, to induce magnetic ordering. Key challenges that remain include the lack of ambient stability and the need to achieve robust room-temperature magnetic ordering through the use of tunable fabrication methods. We propose a scalable approach to inducing room-temperature ferromagnetism by incorporating iron (Fe) ions into phyllosilicates via broad-beam irradiation. Talc serves as an effective scaffold for substituting magnesium (Mg) with Fe in octahedral sites, offering excellent ambient stability and the ability to be thinned to monolayers. Our analysis demonstrates that Fe-implanted talc exhibits ferromagnetic behavior at room temperature. These findings highlight the potential of phyllosilicates as a platform for stable, tunable 2D magnetic insulators.

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Publication Details

Journal
The Journal of Physical Chemistry Letters
Published
2026-09-11
DOI
https://doi.org/10.1021/acs.jpclett.6c01623
Primary Topic
Graphene research and applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Inducing Room Temperature Ferromagnetism in Phyllosilicates via Iron Implantation

Ulrich Kentsch, Maik Zimmermann, A. Ney, Christian Teichert et al.
The Journal of Physical Chemistry Letters
Graphene research and applications
article

Inducing Room Temperature Ferromagnetism in Phyllosilicates via Iron Implantation

Ulrich Kentsch, Maik Zimmermann, A. Ney, Christian Teichert, Aleksandar Matković, Muhammad Zubair Khan, Gregor Hlawacek, R. T. Lechner, Jelena Pešić, Andrijana Šolajić, Nico Klingner, Daniel Knez, Oleg E. Peil, Ronald J. Bäkker, Dragana Tizić Matković, Monika Feichter, Ayan Khasiyeva
article en

Abstract

Abstract The modulation of intrinsic two-dimensional (2D) ferromagnetism has attracted significant attention due to its potential applications in spintronics and magnetic field sensing. However, the limited availability of intrinsically magnetic 2D materials has driven the exploration of external approaches, including chemical doping, proximity effects, defect engineering, and strain, to induce magnetic ordering. Key challenges that remain include the lack of ambient stability and the need to achieve robust room-temperature magnetic ordering through the use of tunable fabrication methods. We propose a scalable approach to inducing room-temperature ferromagnetism by incorporating iron (Fe) ions into phyllosilicates via broad-beam irradiation. Talc serves as an effective scaffold for substituting magnesium (Mg) with Fe in octahedral sites, offering excellent ambient stability and the ability to be thinned to monolayers. Our analysis demonstrates that Fe-implanted talc exhibits ferromagnetic behavior at room temperature. These findings highlight the potential of phyllosilicates as a platform for stable, tunable 2D magnetic insulators.

The Journal of Physical Chemistry Letters
Johannes Kepler University of Linz (AT), Montanuniversität Leoben (AT), Helmholtz-Zentrum Dresden-Rossendorf (DE), University of Belgrade (RS), Graz University of Technology (AT), Nawi Graz (AT), Materials Center Leoben (Austria) (AT)
European Commission, European Cooperation in Science and Technology, Austrian Science Fund, Ministarstvo Prosvete, Nauke i Tehnološkog Razvoja, OeAD-GmbH, HORIZON EUROPE European Research Council
Openalex Percentile: Top 25%
Graphene research and applications
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