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首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >Trace element compositions of submicroscopic inclusions in coated diamond: A tool for understanding diamond petrogenesis
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Trace element compositions of submicroscopic inclusions in coated diamond: A tool for understanding diamond petrogenesis

机译:涂层金刚石中亚显微夹杂物的微量元素组成:了解金刚石成因的工具

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Trace element compositions of submicroscopic inclusions in both the core and the coat of five coated diamonds from the Democratic Republic of Congo (DRC, formerly Zaire) have been analyzed by Laser Ablation Inductively Coupled Mass Plasma Spectrometry (LA-ICP-MS). Both the diamond core and coat inclusions show a general 2-4-fold enrichment in incompatible elements relative to major elements. This level of enrichment is unlikely to be explained by the entrapment of silicate mantle minerals (olivine, garnet, clinopyroxene, phlogopite) alone and thus submicroscopic fluid or glass inclusions are inferred in both the diamond coat and in the gem quality diamond core. The diamond core fluids have elevated High Field Strength Element (Ti, Ta, Zr, Nb) concentrations and are enriched in U relative to inclusions in the diamond coats and relative to chondrite. The core fluids are also moderately enriched in LILE (Ba, Sr, K). Therefore, we suggest that the diamond cores contain inclusions of silicate melt. However, the Ni content and Ni/Fe ratio of the trapped fluid are very high for a silicate melt in equilibrium with mantle minerals; high Ni and Co concentrations in the diamond cores are attributed to the presence of a sulfide phase coexisting with silicate melt in the diamond core inclusions. Inclusions in the diamond coat are enriched in LILE (U, Ba, Sr, K) and La over the diamond core fluids and to chondrite. The coats have incompatible element ratios similar to natural carbonatite (coat fluid: Na/Ba approximate to 0.66, La/Ta approximate to 130). The coat fluid is also moderately enriched in HFSE (Ta, Nb, Zr) when normalized to chondritic Al. LILE and La enrichment is related to the presence of a carbonatitic fluid in the diamond coat inclusions, which is mixed with a HFSE-rich hydrous silicate fluid similar to that in the core. The composition of the coat fluid is consistent with a genetic link to group 1 kimberlite. Copyright (c) 2005 Elsevier Ltd.
机译:通过激光烧蚀电感耦合质谱法(LA-ICP-MS)分析了来自刚果民主共和国(DRC,前身为扎伊尔)的五颗涂层钻石的核心和涂层中的亚显微夹杂物中的微量元素组成。相对于主要元素,钻石核和涂层内含物均显示出不相容元素的一般富集2-4倍。这种富集程度不可能用硅酸盐地幔矿物(橄榄石,石榴石,斜辉石,金云母)的夹带来解释,因此可以推断出金刚石涂层和宝石级金刚石芯中的亚微观流体或玻璃夹杂物。金刚石核心流体的高场强元素(Ti,Ta,Zr,Nb)浓度升高,并且相对于金刚石涂层中的夹杂物以及相对于球粒晶而言,富含U。岩心液中还富含LILE(Ba,Sr,K)。因此,我们建议金刚石芯包含硅酸盐熔体的夹杂物。然而,对于与地幔矿物保持平衡的硅酸盐熔体而言,截留流体的Ni含量和Ni / Fe比非常高。金刚石芯中较高的Ni和Co浓度归因于金刚石芯包裹体中存在与硅酸盐熔体共存的硫化物相。金刚石涂层中的夹杂物在金刚石核心流体和球粒陨石中富含LILE(U,Ba,Sr,K)和La。涂层具有与天然碳酸盐相似的不相容元素比率(涂层液:Na / Ba约为0.66,La / Ta约为130)。当归一化为软骨状Al时,涂层液还适度富集HFSE(Ta,Nb,Zr)。 LILE和La富集与金刚石涂层包裹体中碳酸盐流体的存在有关,后者与类似于岩心中的富HFSE的含水硅酸盐流体混合。包衣液的组成与第1组金伯利岩的遗传联系一致。版权所有(c)2005 Elsevier Ltd.

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