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首页> 外文期刊>Physics and Chemistry of Minerals >A hitherto unrecognised band in the Raman spectra of silica rocks: influence of hydroxylated Si–O bonds (silanole) on the Raman moganite band in chalcedony and flint (SiO2)
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A hitherto unrecognised band in the Raman spectra of silica rocks: influence of hydroxylated Si–O bonds (silanole) on the Raman moganite band in chalcedony and flint (SiO2)

机译:硅岩拉曼光谱中迄今无法识别的谱带:玉髓和fl石(SiO2)中羟基化的Si-O键(硅烷基)对拉曼锰矿谱带的影响

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摘要

Chalcedony is a spatial arrangement of hydroxylated nanometre-sized α-quartz (SiO2) crystallites that are often found in association with the silica mineral moganite (SiO2). A supplementary Raman band at 501 cm−1 in the chalcedony spectrum, attributed to moganite, has been used for the evaluation of the quartz/moganite ratio in silica rocks. Its frequency lies at 503 cm−1 in sedimentary chalcedony, representing a 2 cm−1 difference with its position in pure moganite. We present a study of the 503 cm−1 band’s behaviour upon heat treatment, showing its gradual disappearance upon heating to temperatures above 300 °C. Infrared spectroscopic measurements of the silanole (SiOH) content in the samples as a function of annealing temperature show a good correlation between the disappearance of the 503 cm−1 Raman band and the decrease of structural hydroxyl. Thermogravimetric analyses reveal a significant weight loss that can be correlated with the decreasing of this Raman band. X-ray powder diffraction data suggest the moganite content in the samples to remain stable. We propose therefore the existence of a hitherto unknown Raman band at 503 cm−1 in chalcedony, assigned to ‘free’ Si–O vibrations of non-bridging Si–OH that oscillate with a higher natural frequency than bridging Si–O–Si (at 464 cm−1). A similar phenomenon was recently observed in the infrared spectra of chalcedony. The position of this Si–OH-related band is nearly the same as the Raman moganite band and the two bands may interfere. The actually observed Raman band in silica rocks might therefore be a convolution of a silanole and a moganite vibration. These findings have broad implications for future Raman spectroscopic studies of moganite, for the assessment of the quartz/moganite ratio, using this band, must take into account the contribution from silanole that are present in chalcedony and moganite.
机译:玉髓是羟基化的纳米级α-石英(SiO2 )微晶的空间排列,通常与二氧化硅矿物蒙脱石(SiO2 )结合存在。在玉髓光谱中的一个附加的拉曼谱带,其在玉髓光谱中归因于锰铁矿,已被用于评估石英岩中石英/锰铁矿的比率,其值为501 cm-1。在沉积的玉髓中,它的频率为503 cm-1 ,与在纯锰矿中的位置相差2 cm-1 。我们对503 cm-1 热处理后的行为进行了研究,结果表明加热到300°C以上时,其逐渐消失。样品中硅硅烷(SiOH)含量的红外光谱测量结果与退火温度的关系表明503 cm-1 拉曼谱带的消失与结构羟基的减少之间具有良好的相关性。热重分析表明,显着的重量损失与该拉曼谱带的减少有关。 X射线粉末衍射数据表明样品中的锰矿含量保持稳定。因此,我们建议在玉髓中存在一个迄今未知的503 cm-1 拉曼谱带,该谱带被分配给非桥接Si-OH的“自由” Si-O振动,该振动以比桥接Si-OH更高的固有频率进行振荡。 O–Si(在464 cm-1 )。最近在玉髓的红外光谱中观察到了类似的现象。与Si-OH有关的谱带的位置几乎与拉曼锰矿谱带相同,并且这两个谱带可能会发生干扰。因此,在石英岩石中实际观察到的拉曼谱带可能是硅烷和卷积云母振动的卷积。这些发现对将来的莫根石拉曼光谱研究具有广泛的意义,因为在使用该谱带评估石英/莫根石比率时,必须考虑到玉髓和莫来石中存在的硅硅烷的贡献。

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