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A comparative synthesis study of α-MnTe across solid-state, Arc-melting, and Te-flux routes
- Department of Physics and Chemistry
- Spin Nanotech Laboratory
- 1. Journal Articles
- Department of Physics and Chemistry
- Nanospm Lab(Advanced Materials Research Group)
- 1. Journal Articles
- Department of Physics and Chemistry
- Quantum Functional Materials Laboratory
- 1. Journal Articles
- Department of Physics and Chemistry
- Novel Quantum Materials Laboratory
- 1. Journal Articles
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- Title
- A comparative synthesis study of α-MnTe across solid-state, Arc-melting, and Te-flux routes
- Issued Date
- 2026-08
- Citation
- JOURNAL OF CRYSTAL GROWTH, v.688
- Type
- Article
- Author Keywords
- Altermagnetism ; MnTe ; Comparative synthesis ; Solid-state reaction ; Arc melting ; Te self-flux method
- Keywords
- TOPOLOGICAL SURFACE-STATES ; THERMOELECTRIC PROPERTIES ; FERMIONS
- ISSN
- 0022-0248
- Abstract
-
Although alpha-MnTe has attracted renewed interest in both thermoelectric and altermagnetic contexts, direct comparisons of practically accessible synthesis routes within a common experimental framework remain limited. Here, we compare conventional solid-state reaction, arc melting and Te self-flux growth methods under a common framework of composition control and thermal history. Within the explored conditions, the phase outcome depends not only on the nominal starting composition but also on route-dependent synthesis environments, including volatilization in sealed ampoules, repeated remelting and rapid quenching in arc melting, and crystal-flux interfacial segregation in Te self-flux growth. In the solid-state route, slow heating with a slightly Mn-rich starting composition was associated with reduced MnTe2 and alpha-MnTe-dominant products. Arc melting yielded alpha-MnTe-dominant products without post-annealing, accompanied by dendritic-like microstructures. Te self-flux growth yielded single crystals, although a minor MnTe2-rich interfacial or surface layer often remained. While the present dataset does not define a rigorous phase boundary or a definitive mechanistic model, it provides a systematic comparative framework for route-dependent phase outcomes and impurity persistence in alpha-MnTe synthesis.
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- Publisher
- ELSEVIER
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