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Magnetism of pure iron jarosites

作者:Daniel Grohol, Daniel G. Nocera, Dimitris Papoutsakis · 发表于:Physical review. B, Condensed matter · 年份:2003 · DOI:10.1103/physrevb.67.064401 · 被引用次数:92 · 研究领域:Advanced Condensed Matter Physics、Crystal Structures and Properties、Theoretical and Computational Physics

Stoichiometrically pure jarosites of the formula $A{\mathrm{Fe}}_{3}(\mathrm{OH}{)}_{6}({\mathrm{SO}}_{4}{)}_{2}$ with $A={\mathrm{Na}}^{+},$ ${\mathrm{K}}^{+},$ ${\mathrm{Rb}}^{+},$ and ${\mathrm{NH}}_{4}^{+}$ have been afforded by a newly developed redox-based, hydrothermal method. The jarosites exhibit an intralayer antiferromagnetic exchange interaction $(\ensuremath{-}829\mathrm{K}<{\ensuremath{\Theta}}_{\mathrm{CW}}<\ensuremath{-}812\mathrm{K})$ and transition temperatures for long-range order (LRO) $(61\mathrm{K}<{T}_{N}<65\mathrm{K})$ that are essentially insensitive to the size of the ${A}^{+}$ ion. A cusp at ${T}_{N}$ in the ac susceptibility curve is frequency independent. The origin of LRO is consistent with coupling of jarosite layers exhibiting a net magnetization, which arises from an anisotropy developed, most likely, from the Dzyaloshinsky-Moriya (DM) interaction. A canted intralayer spin structure, which is a consequence of the DM interaction, is signified by a remanent magnetization $(\ensuremath{\sim}53\mathrm{K}<{T}_{D}<\ensuremath{\sim}58\mathrm{K}),$ the magnitude of which depends on crystallite size. X-ray single crystal analyses of the pure ${\mathrm{Fe}}^{3+}$ jarosite compounds reveal that the kagom\'e layers are structurally invariant with those of their ${\mathrm{Cr}}^{3+}$ and ${\mathrm{V}}^{3+}$ relatives. This structural homology allows the sign and magnitude of exchange coupling within kagom\'e layers to be correlated to the ...