Nitrogen-Vacancy Magnetometry of Edge Magnetism in WS2 Flakes

Fuente: arXiv
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Main Authors: Fescenko, Ilja, Kumar, Raman, Gas-Osoth, Thitinun, Wang, Yifei, Lamichhane, Suvechhya, Li, Tianlin, Erickson, Adam, Raghavan, Nina, Delord, Tom, Cress, Cory D., Proscia, Nicholas, LaGasse, Samuel W., Liou, Sy-Hwang, Hong, Xia, Fonseca, Jose J., An, Toshu, Meriles, Carlos A., Laraoui, Abdelghani
Format: Preprint
Published: 2025
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author Fescenko, Ilja
Kumar, Raman
Gas-Osoth, Thitinun
Wang, Yifei
Lamichhane, Suvechhya
Li, Tianlin
Erickson, Adam
Raghavan, Nina
Delord, Tom
Cress, Cory D.
Proscia, Nicholas
LaGasse, Samuel W.
Liou, Sy-Hwang
Hong, Xia
Fonseca, Jose J.
An, Toshu
Meriles, Carlos A.
Laraoui, Abdelghani
author_facet Fescenko, Ilja
Kumar, Raman
Gas-Osoth, Thitinun
Wang, Yifei
Lamichhane, Suvechhya
Li, Tianlin
Erickson, Adam
Raghavan, Nina
Delord, Tom
Cress, Cory D.
Proscia, Nicholas
LaGasse, Samuel W.
Liou, Sy-Hwang
Hong, Xia
Fonseca, Jose J.
An, Toshu
Meriles, Carlos A.
Laraoui, Abdelghani
contents Two-dimensional (2D) magnets are of significant interest both as a platform for exploring novel fundamental physics and for their potential in spintronic and optoelectronic devices. Recent bulk magnetometry studies have indicated a weak ferromagnetic response in WS2, and theoretical predictions suggest edge-localized magnetization in flakes with partial hydrogenation. Here, we use room-temperature wide-field quantum diamond magnetometry to image pristine and Fe-implanted WS2 flakes of varying thicknesses (45-160 nm), exfoliated from bulk crystals and transferred to NV-doped diamond substrates. We observe direct evidence of edge-localized stray magnetic fields, which scale linearly with applied external magnetic field (4.4-220 mT), reaching up to 4.7 uT. The edge signal shows a limited dependence on the flake thickness, consistent with dipolar field decay and sensing geometry. Magnetic simulations using five alternative models favor the presence of edge magnetization aligned along an axis slightly tilted from the normal to the WS2 flake plane, consistent with spin canting in antiferromagnetically coupled edge states. Our findings establish WS2 as a promising platform for edge-controlled 2D spintronics.
format Preprint
id arxiv_https___arxiv_org_abs_2505_11728
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Nitrogen-Vacancy Magnetometry of Edge Magnetism in WS2 Flakes
Fescenko, Ilja
Kumar, Raman
Gas-Osoth, Thitinun
Wang, Yifei
Lamichhane, Suvechhya
Li, Tianlin
Erickson, Adam
Raghavan, Nina
Delord, Tom
Cress, Cory D.
Proscia, Nicholas
LaGasse, Samuel W.
Liou, Sy-Hwang
Hong, Xia
Fonseca, Jose J.
An, Toshu
Meriles, Carlos A.
Laraoui, Abdelghani
Mesoscale and Nanoscale Physics
Two-dimensional (2D) magnets are of significant interest both as a platform for exploring novel fundamental physics and for their potential in spintronic and optoelectronic devices. Recent bulk magnetometry studies have indicated a weak ferromagnetic response in WS2, and theoretical predictions suggest edge-localized magnetization in flakes with partial hydrogenation. Here, we use room-temperature wide-field quantum diamond magnetometry to image pristine and Fe-implanted WS2 flakes of varying thicknesses (45-160 nm), exfoliated from bulk crystals and transferred to NV-doped diamond substrates. We observe direct evidence of edge-localized stray magnetic fields, which scale linearly with applied external magnetic field (4.4-220 mT), reaching up to 4.7 uT. The edge signal shows a limited dependence on the flake thickness, consistent with dipolar field decay and sensing geometry. Magnetic simulations using five alternative models favor the presence of edge magnetization aligned along an axis slightly tilted from the normal to the WS2 flake plane, consistent with spin canting in antiferromagnetically coupled edge states. Our findings establish WS2 as a promising platform for edge-controlled 2D spintronics.
title Nitrogen-Vacancy Magnetometry of Edge Magnetism in WS2 Flakes
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2505.11728