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Luminescence spectroscopy and microscopy applied to study gem materials: a case study of C centre containing diamonds

机译:发光光谱学和显微镜技术用于研究宝石材料:以C中心金刚石为例的研究

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The methods of luminescence spectroscopy and microscopy are widely used for the analysis of gem materials. This paper gives an overview of the most important applications of the analysis of laser and UV excited luminescence by spectroscopy and visually by microscopy with emphasis on diamond, and specifically natural type Ib diamond, little studied so far. Luminescence based techniques are paramount to the gemmological analysis of diamond, in order to determine whether it is natural, treated or synthetic. The great sensitivity of luminescence helps detect some emitting centres that are undetectable by any other analytical method. Hence, especially for diamond, luminescence is an enabling technology, as illustrated by its pioneering use of imagery for the separation of natural and synthetic diamond, and of spectroscopy for the detection of High Pressure-High Temperature treatment. For all other gemstones the applications are at the moment less numerous, but nevertheless they remain highly important. They provide quickly information on the identification of a gem material, and its treatment. Besides the study of broad band emissions caused by various colour centres, the typical PL-causing trace elements (amongst others) are chromium, manganese, uranium and rare earth elements. In pearls the study of broad band luminescence can be useful, and particularly the study of pink to red porphyrin luminescence in pearls from certain species such as Pinctada and Pteria and others can help identify the pearl-producing mollusc, or if a pearl has been dyed or not. Type Ib diamonds are representative of the importance and complexity of the analysis of luminescence by microscopy and spectroscopy. They show a wide range of sometimes very complex emissions that result in luminescence colours from green to yellow to orange or red. These emissions show generally very inhomogeneous distribution. They are caused by a range of defects, however only a few of them are well characterized.
机译:发光光谱法和显微镜法广泛用于宝石材料的分析。本文概述了通过光谱学和显微镜观察在激光和紫外线激发的发光分析中最重要的应用,重点是金刚石,尤其是天然Ib型金刚石,到目前为止很少研究。为了确定钻石是天然的,经过处理的还是合成的,基于发光的技术对于钻石的宝石学分析至关重要。发光的高灵敏度有助于检测某些其他分析方法无法检测到的发射中心。因此,特别是对于钻石而言,发光是一种使能技术,正如其将图像用于分离天然钻石和合成钻石以及将光谱学用于检测高压-高温处理的开创性使用所说明的那样。对于所有其他宝石,目前的应用数量较少,但仍然非常重要。他们提供有关宝石材料及其处理方法的快速信息。除了研究由各种色心引起的宽带发射外,引起PL的典型痕量元素(还有其他元素)还包括铬,锰,铀和稀土元素。在珍珠中,宽带发光的研究可能是有用的,尤其是对某些物种(例如Pinctada和Pteria等)的珍珠中的粉红色到红色卟啉发光的研究可以帮助识别产生珍珠的软体动物,或者是否已经将珍珠染色或不。 Ib型钻石代表了通过显微镜和光谱法分析发光的重要性和复杂性。它们显示出多种多样的,有时非常复杂的发射光,从而导致从绿色到黄色到橙色或红色的发光颜色。这些排放通常显示非常不均匀的分布。它们是由一系列缺陷引起的,但是只有少数缺陷具有良好的特征。

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