Effect of disordered imidazole substructure on proton dynamics in imidazolium malonic acid salt

P. Ławniczak, K. Pogorzelec-Glaser, A. Pietraszko, B. Hilczer
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引用次数: 1

Abstract

The influence of a disorder in cation substructure on proton conductivity of imidazolium malonate (Im-MAL) is studied. Imidazolium in salts with dicarboxylic acids have been found to have a well ordered hydrogen-bond network and only in Im-MAL [Pogorzelec-Glaser et al. (2006). Mater. Sci.-Pol. (2006), 24, 245–252] were two types of cation observed: ordered Im-I and disordered Im-II. Im-I is involved in hydrogen bonds with malonic acid molecules, whereas Im-II is disordered between two symmetrically equivalent positions with occupancy of 0.5. NMR studies by Mizuno et al. [Hyperfine Interact. (2015), 230, 95–100] showed an 180° flip of ordered Im-I and calculated contribution of Im-I flipping to proton conductivity of Im-MAL. Ławniczak et al. [Solid State Ionics (2017), 306, 25] reported that temperature variation of the proton conductivity by impedance spectroscopy yielded the conductivity value higher than that calculated by Mizuno for Im-I. Moreover these detailed structure studies at 240 K and 280 K excluded any phase transition. Repeated X-ray studies from 14 K to 360 K show a continuous increase in anisotropic displacement factors. The half-occupied hydrogen bonds linking the Im-II nitro­gen atoms with hydroxyl oxygen atoms may be considered as electric dipoles and the interbond proton transfer as dipolar switching. It assumed here a coherent switching at low temperatures and a decrease of the coupling at higher temperatures with the disappearance at cross-over temperature at 318 K. The possible proton pathway in the crystal structure is determined and the contribution of the proton dynamics of Im-II to phonon-assisted proton diffusion in the ordered substructure is estimated.
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无序咪唑亚结构对咪唑丙二酸盐中质子动力学的影响
研究了阳离子亚结构紊乱对丙二酸咪唑(Im-MAL)质子电导率的影响。具有二羧酸的盐中的咪唑已被发现具有有序的氢键网络,并且仅在Im-MAL中[pogorzelece - glaser等人(2006)]。板牙。Sci.-Pol。(2006), 24, 245-252]观察到两种类型的阳离子:有序的Im-I和无序的Im-II。Im-I参与丙二酸分子的氢键,而Im-II在两个对称等效位置之间无序,占用率为0.5。Mizuno等人的核磁共振研究[超精细相互作用]。(2015), 230,95 - 100]显示了有序的Im-I翻转180°,并计算了Im-I翻转对Im-MAL质子电导率的贡献。Ławniczak等[Solid State Ionics(2017), 306, 25]报道了通过阻抗谱计算质子电导率的温度变化得到的电导率值高于Mizuno计算的Im-I的电导率值。此外,这些在240k和280k下的详细结构研究排除了任何相变。从14k到360k的重复x射线研究表明,各向异性位移因子持续增加。连接Im-II型氮原子与羟基氧原子的半占据氢键可视为电偶极子,键间质子转移可视为偶极开关。假设在低温下存在相干开关,在高温下耦合减弱,在318 K交叉温度下耦合消失。确定了晶体结构中可能的质子路径,并估计了Im-II的质子动力学对有序子结构中声子辅助质子扩散的贡献。
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