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Hematite and carbonaceous materials in geological samples: A cautionary tale

机译:地质样品中的赤铁矿和含碳物质:一个警示故事

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Over the last few decades Raman spectroscopy has been increasingly applied as an analytical tool in geoscience research. Raman spectroscopy is a powerful tool for geologists as it is non-destructive, requires little to no sample preparation, and can be undertaken in situ on various irreplaceable geological samples. Also, this technique is useful in the identification of minerals and geo-organic material. However, despite this ease of application, there are some facets of Raman spectroscopy data that can lead to erroneous interpretations. For instance, there is much confusion in the geological literature distinguishing the difference between the hematite vibrational mode at ca. 1320 cm~(-1) and the disordered sp~2 carbonaceous material D band at 1340 cm~(-1). Furthermore, geologists will often collect 2 spectra, one in the mineral finger print region (200-800 cm~(-1)) and then a spectrum in the carbon first-order region (1000-1800 cm~(-1)), rather than performing a full-region scan. This allows the misidentification of the hematite mode at 1320 cm~(-1) as the D band from disordered carbonaceous material. Here we show that it is best practice for geologists to collect spectra between 200 and 1800 cm~(-1) to better distinguish between hematite and disordered carbonaceous material, materials that often co-occur in geological samples.
机译:在过去的几十年中,拉曼光谱已越来越多地用作地球科学研究中的分析工具。拉曼光谱术是地质学家的有力工具,因为它是无损的,几乎不需要样品制备,并且可以在各种不可替代的地质样品上进行现场检测。而且,该技术在鉴定矿物和地有机材料方面很有用。然而,尽管应用简便,但拉曼光谱数据的某些方面仍可能导致错误的解释。例如,在地质文献中有很多混淆,以区分约200毫米处赤铁矿振动模式之间的差异。 1320 cm〜(-1),无序的sp〜2含碳物质D带位于1340 cm〜(-1)。此外,地质学家通常会收集2个光谱,一个是在矿物指纹区域(200-800 cm〜(-1)),然后是一个碳阶区域(1000-1800 cm〜(-1)),而不是执行全区域扫描。这允许将1320 cm〜(-1)处的赤铁矿模式错误地识别为来自无序含碳物质的D带。在这里,我们表明,地质学家的最佳实践是收集200至1800 cm〜(-1)之间的光谱,以更好地区分赤铁矿和无序含碳物质,这是地质样品中经常共存的物质。

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