Tunable Magnetism in 2D Organic‐Ion‐Intercalated MnPS3 via Molecule‐Dependent Vacancy Generation

Author:

Tezze Daniel1ORCID,Pereira José M.1ORCID,Tutar Dogukan2,Ramos Maria1ORCID,Regner Jakub3,Gargiani Pierluigi4ORCID,Schiller Frederik56ORCID,Casanova Fèlix17ORCID,Alegria Angel58ORCID,Martín‐García Beatriz17ORCID,Sahin Hasan2,Sofer Zdenek3ORCID,Ormaza Maider8ORCID,Hueso Luis E.17ORCID,Gobbi Marco57ORCID

Affiliation:

1. CIC nanoGUNE BRTA Donostia‐San Sebastián 20018 Spain

2. Department of Photonics Izmir Institute of Technology Izmir 35430 Turkey

3. Dept. of Inorganic Chemistry University of Chemistry and Technology Prague Technicka 5 Prague 6 166 28 Czech Republic

4. ALBA Synchrotron Light Source Barcelona 08290 Spain

5. Centro de Física de Materiales (CSIC‐UPV‐EHU) and Materials Physics Center (MPC) Donostia‐San Sebastián 20018 Spain

6. Donostia International Physics Center (DIPC) Donostia‐San Sebastián 20018 Spain

7. IKERBASQUE Basque Foundation for Science Bilbao 48009 Spain

8. Departamento de Polímeros y Materiales Avanzados: Física, Química y Tecnología UPV‐EHU Donostia‐San Sebastián 20018 Spain

Abstract

AbstractThe magnetic properties of van der Waals materials are profoundly influenced by structural defects. The layered antiferromagnet MnPS3 offers a unique opportunity to explore defect‐related magnetism, as Mn2+ vacancies can be generated by the intercalation of specific guest molecules. However, the effectiveness of this process in atomically thin flakes and the extent of the magnetic tunability remain unclear. Here, it is shown that the magnetic properties of MnPS3 can be tailored through the intercalation of different guest molecules. Notably, the insertion of four alkylammonium ions introduces different populations of Mn2+ vacancies, leading to a transition from the pristine antiferromagnetic state to more complex magnetic textures, including a ferrimagnetic state displaying a magnetic saturation of 1 µB per atom. Moreover, it is shown that the intercalation of few‐nm‐thick flakes also leads to the emergence of a ferrimagnetic response. This in‐flake intercalation, which can be monitored in real time using optical microscopy, can be interrupted before completion, generating lateral heterostructures between pristine and intercalated areas. This approach opens the way to the use of partial intercalation to define regions with distinct magnetic properties within a single flake.

Funder

Eusko Jaurlaritza

Euskal Herriko Unibertsitatea

Publisher

Wiley

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