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High-purity (≥99.999%) Co₃Sn₂S₂ single crystals grown via self-flux technique. Exhibits ferromagnetism (177 K), large anomalous Hall effect, and Weyl semimetal behavior, ideal for topological and spintronic research.
Characterized by XRD, Raman, and Hall measurements confirming high crystallinity and Berry-curvature-driven transport phenomena.
Chemical Formula: Co₃Sn₂S₂
Crystal Structure: Rhombohedral (space group R-3m)
Purity: ≥ 99.999% (metals basis)
Availability: Oriented single crystal plates or cleaved flakes
For orders and inquiries: contact@xtalsphere.com
Co₃Sn₂S₂ is a magnetic Weyl semimetal belonging to the Kagome-lattice family, known for its strong Berry curvature, large anomalous Hall effect (AHE), and high intrinsic thermoelectric performance.
It combines ferromagnetism (Tₙ ≈ 177 K) with topologically nontrivial electronic states, making it a cornerstone material for quantum transport, spintronic, and topological device research.
Xtalsphere produces Co₃Sn₂S₂ single crystals using a self-flux technique under controlled temperature gradients to ensure stoichiometric precision and defect-free growth.
All raw elements (Co, Sn, S) are ≥99.999% pure.
The resulting crystals are metallic gray with mirror-like cleavage planes and excellent structural integrity.
Powder & Single-Crystal XRD: Confirms phase purity and rhombohedral symmetry.
SEM–EDS Mapping: Uniform elemental distribution (Co:Sn:S ≈ 3:2:2).
Raman Spectroscopy: Distinct phonon modes confirming structural order.
Laue Diffraction: Ensures crystallographic orientation for transport studies.
Resistivity (ρ–T): Metallic conduction with a sharp kink near 177 K (ferromagnetic transition).
Hall Effect: Large anomalous Hall conductivity (≈ 1100 S/cm) due to Weyl nodes.
Magnetoresistance: Significant AHE and chiral-anomaly signatures under applied magnetic fields.
Magnetization (M–T): Strong ferromagnetism with perpendicular magnetic anisotropy.
All measurements performed using PPMS and SQUID-VSM for precision and reproducibility.
Xtalsphere ensures defect-free, research-grade crystals via:
Controlled argon atmosphere synthesis
ICP-MS and EDS stoichiometry validation
No secondary phases or inclusions detected
Topological quantum transport studies
Spintronic and magnetoelectric devices
Berry-curvature and anomalous Hall investigations
Thermoelectric and magnetic sensor research
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