2007•Zeitschrift für Kristallographie SupplementsRequires access

Intermediate phase in the oxidative hydrothermal synthesis of potassium jarosite, a model kagomé antiferromagnet

William Bisson, Andrew S. Wills

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Abstract

The jarosite family of minerals contain antiferromagnetically coupled Fe 3+ ions that make up the kagomé network.This geometric arrangement of the Fe 3+ ions causes magnetic frustration that results in exotic electronic ground states, e.g.spin glasses and spin liquids.Synthesic research into jarosites has focused on producing near perfect stoichiometry to eliminate possible magnetic disorder.An new oxidative synthesis method has been developed for the potassium, sodium, rubidium and ammonium jarosites that leads to high Fe coverage.We show through the identification of a meta-stable intermediate, using powder Xray diffraction, how near perfect Fe coverage arises using this method.Understanding this new mechanism for jarosite formation suggests that is it possible to synthesis hydronium jarosite -an unconventional spin glass -with a very high Fe coverage.y (SO 4 ) 2 (OH) 6-3y (H 2 O) 3y , where A=K + , Na + , Ag + , Rb + , NH 4 + , H 3 O + , Pb 2+ , Tl 2+ [1].Charge

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The jarosite family of minerals contain antiferromagnetically coupled Fe 3+ ions that make up the kagomé network.This geometric arrangement of the Fe 3+ ions causes magnetic frustration that results in exotic electronic ground states, e.g.spin glasses and spin liquids.Synthesic research into jarosites has focused on producing near perfect stoichiometry to eliminate possible magnetic disorder.An new oxidative synthesis method has been developed for the potassium, sodium, rubidium and ammonium jarosites that leads to high Fe coverage.We show through the identification of a meta-stable intermediate, using powder Xray diffraction, how near perfect Fe coverage arises using this method.Understanding this new mechanism for jarosite formation suggests that is it possible to synthesis hydronium jarosite -an unconventional spin glass -with a very high Fe coverage.y (SO 4 ) 2 (OH) 6-3y (H 2 O) 3y , where A=K + , Na + , Ag + , Rb + , NH 4 + , H 3 O + , Pb 2+ , Tl 2+ [1].Charge

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Available abstract

The jarosite family of minerals contain antiferromagnetically coupled Fe 3+ ions that make up the kagomé network.This geometric arrangement of the Fe 3+ ions causes magnetic frustration that results in exotic electronic ground states, e.g.spin glasses and spin liquids.Synthesic research into jarosites has focused on producing near perfect stoichiometry to eliminate possible magnetic disorder.An new oxidative synthesis method has been developed for the potassium, sodium, rubidium and ammonium jarosites that leads to high Fe coverage.We show through the identification of a meta-stable intermediate, using powder Xray diffraction, how near perfect Fe coverage arises using this method.Understanding this new mechanism for jarosite formation suggests that is it possible to synthesis hydronium jarosite -an unconventional spin glass -with a very high Fe coverage.y (SO 4 ) 2 (OH) 6-3y (H 2 O) 3y , where A=K + , Na + , Ag + , Rb + , NH 4 + , H 3 O + , Pb 2+ , Tl 2+ [1].Charge

Key concepts: Jarosite, Antiferromagnetism, Hydronium, Rubidium, Potassium, Spin glass, Ion, Phase (matter)

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