论文标题

有序软木地的水热合成,PBFE3(PO4)(SO4)(OH)6,A = 5/2KagoméAntiferRomagnet

Hydrothermal synthesis of ordered corkite, PbFe3(PO4)(SO4)(OH)6, a S = 5/2 kagomé antiferromagnet

论文作者

Ferrenti, Austin M., Meschke, Vanessa, Ghosh, Shreenanda, Davis, Jackson, Drichko, Natalia, Toberer, Eric S., McQueen, Tyrel M.

论文摘要

Corkite,PBFE3(PO4)(SO4)(OH)6是Heisenberg Antiferromagnet的Jarosite家族的研究,已合成,其磁性性能首次是特征。相对于天然样品,合成的软木体在红外线和拉曼光谱中显示了围绕KagoméSublattice的较有序排列的红外和拉曼光谱的特征,该组合保留了反转对称性。磁敏感性测量表明,干式软木岩经历了低于Tn = 48 K的远距离,抗磁性的状态的过渡,低于大多数Jarosite阶段中观察到的状态,并表明进一步的自旋挫败感。测得的磁敏感性的Curie-Weiss拟合产生PEFF的有效磁矩= 6.29(1)Mub/Fe^3+和Theta_cw = -526.0(1.1)K,类似于在类似的高速fe^3+系统中观察到的,并且表明强烈的抗抗抗抗氧化物磁磁性结合。磁熵的变化是温度从t = 0 k到t = 195 k的函数的变化,ds_mag = 14.86 j/mol_fe^3+ k,也与ds_mag = rln(2s+ 1)= 14.9 j/mol k非常吻合。与纯jarosite相比,在各种化学取代物上,结构和磁性在很大程度上保持不变,用更高价值的磷酸盐组替换一个硫酸盐基团的一个硫酸盐基团在corkite中施加了额外的磷酸盐和电子压力,并在corkite中施加了电子压力,进一步使材料的磁性接地击中了磁场。因此,软木岩既代表了已知的Jarosite型材料体系中的异常值,又代表了在高度沮丧的磁系统发展中如何进一步紧张现有结构的说明。

Corkite, PbFe3(PO4)(SO4)(OH)6, an understudied relative of the jarosite family of Heisenberg antiferromagnets, has been synthesized and its magnetic properties characterized for the first time. Relative to natural samples, synthetic corkite displays signatures in both infrared and Raman spectra of a more ordered arrangement of polyanion groups about the kagomé sublattice that retains inversion symmetry. Magnetic susceptibility measurements reveal that dried corkite undergoes a transition to a long-range, antiferromagnetically-ordered state below TN = 48 K, lower than that observed in the majority of jarosite phases, and indicative of further spin frustration. Curie-Weiss fitting of the measured magnetic susceptibility yields an effective magnetic moment of peff = 6.29(1) muB/Fe^3+ and theta_CW = -526.0(1.1) K, analogous to that observed in similar high-spin Fe^3+ systems, and indicative of strong antiferromagnetic coupling. Estimation of the change in magnetic entropy as a function of temperature from T = 0 K to T = 195 K, dS_mag = 14.86 J/mol_Fe^3+ K, is also in good agreement with the dS_mag = Rln(2S+1) = 14.9 J/mol K expected for a S = 5/2 system. In comparison to the pure jarosites, where both structure and magnetism remain largely invariant upon a variety of chemical substitutions, the replacement of one sulfate group per formula unit with a higher-valent phosphate group applies additional steric and electronic pressure on the kagomé lattice in corkite, further frustrating the magnetic ground state of the material. Corkite thus represents both an outlier in the known body of jarosite-type materials, and an illustration of how existing structures may be further strained in the development of highly frustrated magnetic systems.

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