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Co- and Nd-Codoping-Induced High Magnetization in Layered MoS2 Crystals

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journal contribution
posted on 2025-05-09, 02:50 authored by Sohail Ahmed, Peter P. Murmu, Sathish Clastinrusselraj IndirathankamSathish Clastinrusselraj Indirathankam, Xinwei Guan, Rex Geng, Nina Bao, Rong Liu, John Kennedy, Jun Ding, Mingli Peng, Ajayan VinuAjayan Vinu, Jiabao Yi
Magnetic 2D-layered materials are promising for the applications of spintronic devices and compact magnetic devices. There are only a few reported intrinsic 2D-based magnetic materials. Therefore, introducing magnetic element into 2D-layered materials is an effective strategy to synthesize 2D-layered magnetic materials. Recently, ferromagnetism has been realized by doping single transition-metal or rare-earth element, whereas, there is no report by codoping of both transition-metal and rare-earth elements. Herein, Co and Nd are codoped into MoS2-layered crystals by ion implantation. An extremely high magnetization of 6916.3 emu cm−3 at 10 K and 80.3 emu cm−3 at 300 K is achieved. The high magnetization is attributed to the contribution from both transition-metal and rare-earth elements as well as defects, such as vacancy of cation ions, anions, or interstitials. Hence, herein, a useful strategy may be opened to develop high-performance magnetic materials based on 2D-layered materials.

Funding

ARC

FT160100205

History

Journal title

Physica Status Solidi - Rapid Research Letters

Volume

17

Issue

6

Article number

2200348

Publisher

Wiley-Blackwell

Language

  • en, English

College/Research Centre

College of Engineering, Science and Environment

School

Global Innovative Centre for Advanced Nanomaterials

Rights statement

© 2022 The Authors. physica status solidi (RRL) Rapid Research Letters published by Wiley-VCH GmbH. This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited. (http://creativecommons.org/licenses/by/4.0/).