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A New Partially Deprotonated Mixed-Valence Manganese(II,III) Hydroxide–Arsenate with Electronic Conductivity: Magnetic Properties of High- and Room-Temperature Sarkinite

机译:一种新的具有电子电导率的部分去质子化的混合价氢价锰(II,III)氢氧化物:高温和室温尖晶石的磁性

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摘要

A new three-dimensional hydroxide–arsenate compound called compound 2 has been synthesized by heating (in air) of the sarkinite phase, Mn2(OH)AsO4 (compound 1), with temperature and time control. The crystal structure of this high-temperature compound has been solved by Patterson-function direct methods. A relevant feature of this new material is that it is actually the first member of the adamite-type family with mixed-valence manganese(II,III) and electronic conductivity. Crystal data: a = 6.7367(5) Å, b = 7.5220(6) Å, c = 9.8117(6) Å, α = 92.410(4)°, β = 109.840(4)°, γ = 115.946(4)°, P1̅. The unit cell content derived from Rietveld refinement is Mn8(O4Hx)(AsO4)4. Its framework, projected along [111], is characterized by rings of eight Mn atoms with the OH–/O2– inside the rings. These rings form an almost perfect hexagonal arrangement with the AsO4 groups placed in between. Bond-valence analysis indicates both partial deprotonation (x 3) and the presence of Mn in two different oxidation states (II and III), which is consistent with the electronic conductivity above 300 °C from electrochemical measurements. The electron paramagnetic resonance spectra of compound 1 and of its high-temperature form compound 2 show the presence of antiferromagnetic interactions with stronger magnetic coupling for the high-temperature phase. Magnetization measurements of room-temperature compound 1 show a complex magnetic behavior, with a three-dimensional antiferromagnetic ordering and magnetic anomalies at low temperatures, whereas for compound 2, an ordered state is not reached. Magnetostructural correlations indicate that superexchange interactions via oxygen are present in both compounds. The values of the magnetic exchange pathways [Mn–O–Mn] are characteristic of antiferromagnetic couplings. Notwithstanding, the existence of competition between different magnetic interactions through superexchange pathways can cause the complex magnetic behavior of compound 1. The loss of three-dimensional magnetic ordering by heating of compound 1 could well be based on the presence of Mn3+ ions (d4) in compound 2.
机译:通过在温度和时间控制下加热(在空气中)尖晶石相Mn2(OH)AsO4(化合物1),合成了一种称为化合物2的新型三维氢氧化物-砷酸盐化合物。该高温化合物的晶体结构已经通过帕特森函数直接法解决。这种新材料的一个相关特征是,它实际上是具有混合价锰(II,III)和电子导电性的金刚石型族的第一个成员。晶体数据:a = 6.7367(5)Å,b = 7.5220(6)Å,c = 9.8117(6)Å,α= 92.410(4)°,β= 109.840(4)°,γ= 115.946(4)° ,P1̅。源自Rietveld精炼的晶胞含量为Mn8(O4Hx)(AsO4)4。沿[111]投影的其框架的特征是八个Mn原子的环,且环内带有OH- / O2-。这些环形成几乎完美的六边形排列,中间夹有AsO4。键合价分析表明部分去质子化(x 3)和Mn以两种不同的氧化态(II和III)的存在,这与电化学测量中高于300°C的电子电导率一致。化合物1及其高温形式的化合物2的电子顺磁共振光谱显示,对于高温相,存在反铁磁性相互作用且具有较强的磁耦合。室温化合物1的磁化测量显示出复杂的磁行为,具有三维反铁磁排序和低温下的磁异常,而对于化合物2,未达到有序状态。磁结构相关性表明两种化合物中都存在通过氧的超交换相互作用。磁交换路径[Mn–O–Mn]的值是反铁磁耦合的特征。尽管如此,通过超交换途径存在的不同磁性相互作用之间的竞争会导致化合物1的复杂磁行为。通过加热化合物1产生的三维磁有序性损失很可能是基于Mn3 +离子(d4)的存在。复合2。

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