Thickness-Dependent Topological Hall Effect in 2D Cr<sub>5</sub> Si<sub>3</sub> Nanosheets with Noncollinear Magnetic Phase.
basic_science · Level V
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- Record sourced from PubMed, PMID 36719342.
- Also identified by DOI 10.1002/adma.202210755.
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Abstract
Antiferromagnets with noncollinear spin order are expected to exhibit unconventional electromagnetic response, such as spin Hall effects, chiral abnormal, quantum Hall effect, and topological Hall effect. Here, 2D thickness-controlled and high-quality Cr<sub>5</sub> Si<sub>3</sub> nanosheets that are compatible with the complementary metal-oxide-semiconductor technology are synthesized by chemical vapor deposition method. The angular dependence of electromagnetic transport properties of Cr<sub>5</sub> Si<sub>3</sub> nanosheets is investigated using a physical property measurement system, and an obvious topological Hall effect (THE) appears at a large tilted magnetic field, which results from the noncollinear magnetic structure of the Cr<sub>5</sub> Si<sub>3</sub> nanosheet. The Cr<sub>5</sub> Si<sub>3</sub> nanosheets exhibit distinct thickness-dependent perpendicular magnetic anisotropy (PMA), and the THE only emerges in the specific thickness range with moderate PMA. This work provides opportunities for exploring fundamental spin-related physical mechanisms of noncollinear antiferromagnet in ultrathin limit.