Enabling room temperature ferromagnetism in monolayer MoS2 via in situ iron-doping

Author:

Fu ShichenORCID,Kang Kyungnam,Shayan KamranORCID,Yoshimura Anthony,Dadras SiamakORCID,Wang Xiaotian,Zhang Lihua,Chen Siwei,Liu Na,Jindal Apoorv,Li Xiangzhi,Pasupathy Abhay N.,Vamivakas A. NickORCID,Meunier Vincent,Strauf Stefan,Yang Eui-HyeokORCID

Abstract

AbstractTwo-dimensional semiconductors, including transition metal dichalcogenides, are of interest in electronics and photonics but remain nonmagnetic in their intrinsic form. Previous efforts to form two-dimensional dilute magnetic semiconductors utilized extrinsic doping techniques or bulk crystal growth, detrimentally affecting uniformity, scalability, or Curie temperature. Here, we demonstrate an in situ substitutional doping of Fe atoms into MoS2 monolayers in the chemical vapor deposition growth. The iron atoms substitute molybdenum sites in MoS2 crystals, as confirmed by transmission electron microscopy and Raman signatures. We uncover an Fe-related spectral transition of Fe:MoS2 monolayers that appears at 2.28 eV above the pristine bandgap and displays pronounced ferromagnetic hysteresis. The microscopic origin is further corroborated by density functional theory calculations of dipole-allowed transitions in Fe:MoS2. Using spatially integrating magnetization measurements and spatially resolving nitrogen-vacancy center magnetometry, we show that Fe:MoS2 monolayers remain magnetized even at ambient conditions, manifesting ferromagnetism at room temperature.

Funder

U.S. Department of Energy

National Science Foundation

United States Department of Defense | United States Air Force | AFMC | Air Force Office of Scientific Research

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry

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