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首页> 外文期刊>Inorganic Chemistry Frontiers >[NH2NH3][M(HCOO)3] (M = Mn~(2+), Zn~(2+), Co~(2+) and Mg~(2+)): structural phase transitions, prominent dielectric anomalies and negative thermal expansion, and magnetic ordering
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[NH2NH3][M(HCOO)3] (M = Mn~(2+), Zn~(2+), Co~(2+) and Mg~(2+)): structural phase transitions, prominent dielectric anomalies and negative thermal expansion, and magnetic ordering

机译:[NH2NH3] [M(HCOO)3](M = Mn〜(2 +),Zn〜(2 +),Co〜(2+)和Mg〜(2+)):结构相变,明显的介电异常和负热膨胀和磁排序

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摘要

We report here a new class of ammonium metal-formate frameworks of [NH2NH3][M(HCOO)3] (M = Mn~(2+), Zn~(2+), Co~(2+) and Mg~(2+)) incorporating hydrazinium as the cationic template and component. The perovskite Mn and Zn members possess anionic 412·63 metal-formate frameworks with cubic cavities occupied by the NH2NH3~+ cations, while the Co and Mg members have chiral 4~9·6~6 metal-formate frameworks, with chiral hexagonal channels accommodating NH2NH3~+ cations. On heating, the Mn and Zn members undergo phase transitions around 350 K. The structures change from low temperature (LT) polar phases in Pna21 to high temperature (HT) non-polar phases in Pnma, due to the thermally activated librational movement of the NH2 end of the NH2NH3~+ in the cavity and significant framework regulation. The Co and Mg members in LT belong to non-polar P2_12_12_1, are probably antiferroelectric, and they show phase transitions at 380 K (Co) and 348 K (Mg), and the structures change to polar HT phases in P63, triggered by the order-disorder transition of the cation from one unique orientation in LT to three of trigonally-disorder state in HT. Accompanying the phase transitions, which are ferro- to para-electric for Mn and Zn members while antiferro- to ferro-electric for Co and Mg, prominent anisotropic thermal expansions including negative ones, and dielectric anomalies, are observed. The spontaneous polarization values are estimated at 3.58 (Mn, 110 K), 3.48 (Zn, 110 K), 2.61 (Co, 405 K) and 3.44 (Mg, 400 K) μC cm~(-2), respectively, based on the positive and negative charge separations in the polar structures. The structure- property relevance is established based on the order-disorder transitions of NH2NH3~+ and the conformity and adaptability of the metal-formate frameworks to match such order-disorder alternations. The Mn and Co members show spin-canted antiferromagnetic long-range-ordering, with Neel temperatures of 7.9 K and 13.9 K, respectively. Therefore, the two members show coexistence of electric and magnetic orderings in the low temperature region, and they are possible molecule-based multiferroics.
机译:我们在这里报告了[NH2NH3] [M(HCOO)3](M = Mn〜(2 +),Zn〜(2 +),Co〜(2+)和Mg〜( 2+))加入肼作为阳离子模板和组分。钙钛矿锰和锌成员具有阴离子412·63金属甲酸酯骨架,其NH2NH3〜+阳离子占据了立方腔,而钴和镁成员具有手性4〜9·6〜6金属甲酸酯骨架,具有手性六角形通道容纳NH2NH3〜+阳离子。加热时,Mn和Zn成员经历大约350 K的相变。由于Pna21的热活化自由运动,其结构从Pna21中的低温(LT)极性相变为Pnma中的高温(HT)非极性相。空腔中的NH2NH3〜+的NH2末端和显着的骨架调节。 LT中的Co和Mg成员属于非极性P2_12_12_1,可能是反铁电的,并且它们在380 K(Co)和348 K(Mg)处显示相变,并且在P63的作用下,结构转变为HT极性。阳离子从LT的一个唯一方向向HT的三个三角形无序状态的有序无序过渡。伴随着相变,观察到Mn和Zn元素为铁电至准电,而Co和Mg为反铁电至铁电,观察到明显的各向异性热膨胀,包括负热膨胀和介电异常。自发极化值估计分别为3.58(Mn,110 K),3.48(Zn,110 K),2.61(Co,405 K)和3.44(Mg,400 K)μCcm〜(-2),基于极性结构中的正电荷和负电荷分离。根据NH2NH3〜+的有序-无序过渡以及金属甲酸酯骨架的一致性和适应性来建立与结构-性能的相关性,以匹配此类有序-无序交替。 Mn和Co成员显示自旋倾斜的反铁磁远距离有序,其Neel温度分别为7.9 K和13.9K。因此,这两个成员在低温区域显示出电磁顺序的共存,并且它们可能是基于分子的多铁性物。

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