Mączka Mirosław, Marinho Costa Nathalia Leal, Gągor Anna, Paraguassu Waldeci, Sieradzki Adam, Hanuza Jerzy
Institute of Low Temperature and Structure Research, Polish Academy of Sciences, Box 1410, 50-950 Wrocław 2, Poland.
Faculdade de Física, Universidade Federal do Pará, 66075-110, Belém, PA, Brazil.
Phys Chem Chem Phys. 2016 May 18;18(20):13993-4000. doi: 10.1039/c6cp01353h.
We report the synthesis and characterisation of a magnesium formate framework templated by protonated imidazole. Single-crystal X-ray diffraction data showed that this compound crystallizes in the monoclinic structure in the P21/n space group with lattice parameters a = 12.1246(4) Å, b = 12.2087(5) Å, c = 12.4991(4) Å and β = 91.39(1)°. The antiparallel arrangement of the dipole moments associated with imidazolium cations suggests the antiferroelectric character of the room-temperature phase. The studied compound undergoes a structural phase transition at 451 K associated with a halving of the c lattice parameter and the disappearance of the antiferroelectric order. The monoclinic symmetry is preserved and the new metrics are a = 12.261(7) Å, b = 12.290(4) Å, c = 6.280(4) Å, and β = 90.62(5)°. Raman and IR data are consistent with the X-ray diffraction data. They also indicate that the disorder of imidazolium cations plays a significant role in the mechanism of the phase transition. Dielectric data show that the phase transition is associated with a relaxor nature of electric ordering. We also report high-pressure Raman scattering studies of this compound that revealed the presence of two pressure-induced phase transitions near 3 and 7 GPa. The first transition is most likely associated with a rearrangement of the imidazolium cations without any significant distortion of these cations and the magnesium formate framework, whereas the second transition leads to strong distortion of both the framework and imidazolium cations. High-pressure data also show that imidazolium magnesium formate does not show any signs of amorphization up to 11.4 GPa.
我们报道了以质子化咪唑为模板的甲酸镁骨架的合成与表征。单晶X射线衍射数据表明,该化合物以单斜结构结晶,空间群为P21/n,晶格参数a = 12.1246(4) Å,b = 12.2087(5) Å,c = 12.4991(4) Å,β = 91.39(1)°。与咪唑阳离子相关的偶极矩的反平行排列表明室温相具有反铁电特性。所研究的化合物在451 K发生结构相变,伴随着c晶格参数减半和反铁电有序性消失。单斜对称性得以保留,新的参数为a = 12.261(7) Å,b = 12.290(4) Å,c = 6.280(4) Å,β = 90.62(5)°。拉曼和红外数据与X射线衍射数据一致。它们还表明咪唑阳离子的无序在相变机制中起重要作用。介电数据表明,相变与电有序的弛豫性质有关。我们还报道了该化合物的高压拉曼散射研究,结果显示在3和7 GPa附近存在两个压力诱导的相变。第一个相变很可能与咪唑阳离子的重排有关,而这些阳离子和甲酸镁骨架没有任何明显变形,而第二个相变导致骨架和咪唑阳离子都发生强烈变形。高压数据还表明,甲酸镁咪唑在高达11.4 GPa时没有显示出任何非晶化迹象。