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Germanium Crystal Chemistry in Cu-Bearing Sulfides from Micro-XRF Mapping and Micro-XANES Spectroscopy

机译:微量XRF映射和微量XANES光谱法测定含铜硫化物中的锗晶体化学

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Germanium is considered a critical element, with a demand that has sharply increased due to booming high-technology industries. To understand Ge incorporation mechanisms in natural systems, we investigate Ge speciation in Cu-bearing sulfide minerals using synchrotron X-ray fluorescence (XRF) chemical mapping and Ge K -edge μ-X-ray absorption near-edge structures (μ-XANES) spectroscopy. The samples investigated include (i) a homogeneous chalcopyrite from the Kipushi polymetallic deposit (Central African copperbelt, D.R. Congo) and (ii) a zoned Ge-rich chalcopyrite from the Barrig?o Cu deposit (Iberian pyrite belt, Portugal). First, our spectroscopic analysis supports the occurrence of tetrahedrally-coordinated Ge 4+ in chalcopyrite, independently from origins or zoning patterns observed for these minerals. Then, based on statistical analyses of XRF chemical maps, we demonstrate that tetravalent germanium most likely incorporates chalcopyrite through the Fe crystallographic site via coupled substitutions with the following form: (2 x + 3 y )Fe 3+ ? ( x + 2 y )(Ge,Sn) 4+ + x (Zn,Pb) 2+ + y (Cu,Ag) + , although the presence of lattice vacancies cannot be completely excluded.
机译:锗被认为是至关重要的元素,由于高科技产业的蓬勃发展,需求急剧增加。为了了解自然系统中的Ge掺入机制,我们使用同步加速器X射线荧光(XRF)化学作图和Ge K边缘μ-X射线吸收近边缘结构(μ-XANES),研究了含铜硫化物矿物中的Ge形态。光谱学。所研究的样品包括(i)来自Kipushi多金属矿床(中非铜矿带,刚果民主共和国)的均质黄铜矿,以及(ii)来自Barrig?o Cu矿床(葡萄牙伊比利亚黄铁矿带)的富含Ge的带状黄铜矿。首先,我们的光谱分析支持在黄铜矿中发生四面体配位的Ge 4+,而与这些矿物的起源或分区模式无关。然后,基于对XRF化学图谱的统计分析,我们证明四价锗最有可能通过耦合取代以以下形式通过Fe结晶位点结合黄铜矿:(2 x + 3 y)Fe 3+? (x + 2 y)(Ge,Sn)4+ + x(Zn,Pb)2+ + y(Cu,Ag)+,尽管不能完全排除晶格空位的存在。

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