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Structural studies of NaPO3-MoO3 glasses by solid-state nuclear magnetic resonance and raman spectroscopy

机译:固态核磁共振和拉曼光谱研究NaPO3-MoO3玻璃的结构

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Vitreous samples were prepared in the (100 - x)% NaPO3-x% MoO3 (0 <= x <= 70) glass-forming system by a modified melt method that allowed good optical quality samples to be obtained. The structural evolution of the vitreous network was monitored as a function of composition by differential scanning calorimetry (DSC), Fourier transform infrared spectroscopy (FT-IR), Raman scattering, and solid-state nuclear magnetic resonance (NMR) for P-31, Na-23, and Mo-95 nuclei. Addition of MoO3 to the NaPO3 glass melt leads to a pronounced increase in the glass transition temperatures up to x = 45, suggesting a significant increase in network connectivity. For this same composition range, vibrational spectra suggest that the Mo6+ ions are bonded to some nonbridging oxygen atoms (Mo-O- or Mo=O bonded species). Mo-O-Mo bond formation occurs only at MoO3 contents exceeding x = 45. P-31 magic-angle spinning (MAS) NMR spectra, supported by two-dimensional J-resolved spectroscopy, allow a clear distinction between species having two, one, and zero P-O-P linkages. These sites are denoted as Q(2Mo)((2)), Q(1Mo)((2)), and Q(0Mo)((2)), respectively. For x < 0.45, the populations of these sites can be described along the lines of a binary model, according to which each unit of MoO3 converts two Q(nMo)((2)) sites into two Q((n+1)Mo)((2)) sites (n = 0, 1). This structural model is consistent with the presence of tetrahedral Mo(=O)(2)(O-1/2)(2) environments. Indeed, Mo-95 NMR data suggest that the majority of the molybdenum species are four-coordinated. However, the presence of additional six-coordinate molybdenum in the MAS NMR spectra indicates that the structure of these glasses may be more complicated and may additionally involve sharing of network modifier oxide between the network formers phosphorus and molybdenum. This latter hypothesis is further supported by Na-23{P-31} rotational echo double resonance (REDOR) data, which clearly reveal that the magnetic dipole-dipole interactions between P-31 and Na-23 are increasingly diminished with increasing molybdenum content. The partial transfer of modifier from the phosphate to the molybdate network former implies a partial repolymerization of the phosphate species, resulting in the formation of Q(nMo)((3)) species and accounting for the observed increase in the glass transition temperature with increasing MoO3 content that is observed in the composition range 0 <= x <= 45. Glasses with MoO3 contents beyond x = 45 show decreased thermal and crystallization stability. Their structure is characterized by isolated phosphate species [most likely of the P(OMo)(4) type] and molybdenum oxide clusters with a large extent of Mo-O-Mo connectivity.
机译:通过改进的熔融方法在(100-x)%NaPO3-x%MoO3(0 <= x <= 70)玻璃形成系统中制备玻璃体样品,该方法能够获得良好的光学质量样品。通过差示扫描量热法(DSC),傅立叶变换红外光谱(FT-IR),拉曼散射和P-31的固态核磁共振(NMR)监测玻璃网络的结构演变与组成的关系。 Na-23和Mo-95核。将MoO3添加到NaPO3玻璃熔体中会导致玻璃化转变温度(最高x = 45)显着增加,这表明网络连接性显着增加。对于相同的组成范围,振动光谱表明Mo6 +离子键合到一些非桥连的氧原子(Mo-O-或Mo = O键合的物种)。 Mo-O-Mo键的形成仅在MoO3含量超过x = 45时发生。二维J-分辨光谱支持P-31魔角旋转(MAS)NMR光谱,可以清楚地区分具有两个,一个,以及POP链接为零。这些位点分别表示为Q(2Mo)((2)),Q(1Mo)((2))和Q(0Mo)((2))。当x <0.45时,这些位点的种群可以按照二元模型来描述,根据该模型,MoO3的每个单元将两个Q(nMo)((2))位点转换为两个Q((n + 1)Mo )((2))个网站(n = 0,1)。此结构模型与四面体Mo(= O)(2)(O-1 / 2)(2)环境的存在是一致的。确实,Mo-95 NMR数据表明大多数钼物种是四配位的。但是,MAS NMR光谱中还存在另外的六配位钼,表明这些玻璃的结构可能更复杂,并且可能还涉及在网络形成剂磷和钼之间共享网络改性剂氧化物。 Na-23 {P-31}旋转回波双共振(REDOR)数据进一步支持了后一种假设,该数据清楚地表明,随着钼含量的增加,P-31和Na-23之间的磁偶极-偶极相互作用逐渐减弱。改性剂从磷酸盐到钼酸盐网络形成剂的部分转移意味着磷酸盐物质的部分再聚合,导致形成Q(nMo)((3))物质,并解释了玻璃化转变温度随温度升高而增加的现象。在组成范围0 <= x <= 45中观察到的MoO3含量。MoO3含量超过x = 45的玻璃显示出降低的热稳定性和结晶稳定性。它们的结构以孤立的磷酸盐种类(最有可能是P(OMo)(4)类型)和具有很大程度的Mo-O-Mo连接性的氧化钼簇为特征。

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