In Fe0.29TaS2, reducing thickness from bulk to 14 nm switches the dominant anomalous Hall effect mechanism from extrinsic skew scattering to intrinsic Berry-curvature contribution, with a crossover near a channel conductivity of 8 x 10^3 ohm-1 cm-1.
Micromagnetometry of two-dimensional ferromagnets
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abstract
The study of atomically thin ferromagnetic crystals has led to the discovery of unusual magnetic behaviour and provided insight into the magnetic properties of bulk materials. However, the experimental techniques that have been used to explore ferromagnetism in such materials cannot probe the magnetic field directly. Here, we show that ballistic Hall micromagnetometry can be used to measure the magnetization of individual two-dimensional ferromagnets. Our devices are made by van der Waals assembly in such a way that the investigated ferromagnetic crystal is placed on top of a multi-terminal Hall bar made from encapsulated graphene. We use the micromagnetometry technique to study atomically thin chromium tribromide (CrBr3). We find that the material remains ferromagnetic down to monolayer thickness and exhibits strong out-of-plane anisotropy. We also find that the magnetic response of CrBr3 varies little with the number of layers and its temperature dependence cannot be described by the simple Ising model of two-dimensional ferromagnetism.
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cond-mat.mtrl-sci 1years
2019 1verdicts
CONDITIONAL 1representative citing papers
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Anomalous Hall effect mechanisms in quasi-2D van der Waals ferromagnet Fe0.29TaS2
In Fe0.29TaS2, reducing thickness from bulk to 14 nm switches the dominant anomalous Hall effect mechanism from extrinsic skew scattering to intrinsic Berry-curvature contribution, with a crossover near a channel conductivity of 8 x 10^3 ohm-1 cm-1.