首页> 外文期刊>THE CANADIAN MINERALOGIST >BERYLLIUM-SILICON DISORDER AND RARE EARTH CRYSTAL CHEMISTRY IN GADOLINITE FROM THE WHITE CLOUD PEGMATITE, COLORADO, USA
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BERYLLIUM-SILICON DISORDER AND RARE EARTH CRYSTAL CHEMISTRY IN GADOLINITE FROM THE WHITE CLOUD PEGMATITE, COLORADO, USA

机译:来自白色云Pegmatite,科罗拉多州的Gadolinite的铍硅疾病和稀土水晶化学

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摘要

Gadolinite, REE2FeBe2Si2O10, is a monoclinic orthosilicate member of the gadolinite supergroup of minerals and occurs in beryllium and rare earth element (REE) bearing granites, pegmatites, and some metamorphic rocks. Gadolinite from the White Cloud pegmatite, South Platte Pegmatite district, Colorado, USA, has been investigated and shows unusually variable REE compositions and distinct Be-Si disorder. Crystal structure and chemistry of two petrographically distinct gadolinite samples from this locality have been studied by electron microprobe chemical analysis, laser ablation inductively coupled plasma-mass spectrometry (LA-ICP-MS), single-crystal X-ray diffraction (XRD), and micro-Raman spectroscopy. Within these samples, the gadolinite was found to range from gadolinite-(Y) to gadolinite-(Ce). Regions of nearly full occupancy of Fe at the M site, and partial substitution of Si for Be at the Q tetrahedral site, as well as substitution of Be for Si at the T site were observed, with up to 15% vacancy at the Fe site and up to 15% disorder between Be and Si at distinct tetrahedral sites elsewhere. The layered nature of the crystal structure allows for large variation of the radius of the cation at the A site which contains the REE. This study shows that Be may substitute for Si and that Be may be more abundant in geochemical systems than previously assumed.
机译:钆岩REE2FeBe2Si2O10是钆岩超群矿物中的单斜正硅酸盐,见于含铍和稀土元素(REE)的花岗岩、伟晶岩和一些变质岩中。对美国科罗拉多州南普拉特伟晶岩区白云伟晶岩中的钆铁矿进行了研究,发现其稀土元素组成异常多变,存在明显的Be-Si无序。通过电子探针化学分析、激光烧蚀电感耦合等离子体质谱(LA-ICP-MS)、单晶X射线衍射(XRD)和显微拉曼光谱研究了该地区两个岩相学不同的钆铁矿样品的晶体结构和化学。在这些样品中,发现钆铁矿的范围从钆铁矿-(Y)到钆铁矿-(Ce)。观察到在M位铁几乎完全占据,在Q四面体位硅部分取代Be,以及在T位Be取代Si的区域,在Fe位高达15%的空位,在其他不同四面体位Be和Si之间高达15%的无序。晶体结构的层状性质允许在含有稀土元素的位置处阳离子半径发生较大变化。这项研究表明,Be可能取代Si,并且Be在地球化学系统中的含量可能比之前假设的更丰富。

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