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Distribution and Substitution Mechanism of Ge in a Ge-(Fe)-Bearing Sphalerite

机译:含Ge-(Fe)的闪锌矿中Ge的分布与取代机理

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The distribution and substitution mechanism of Ge in the Ge-rich sphalerite from the Tres Marias Zn deposit, Mexico, was studied using a combination of techniques at μm- to atomic scales. Trace element mapping by Laser Ablation Inductively Coupled Mass Spectrometry shows that Ge is enriched in the same bands as Fe, and that Ge-rich sphalerite also contains measurable levels of several other minor elements, including As, Pb and Tl. Micron- to nanoscale heterogeneity in the sample, both textural and compositional, is revealed by investigation using Focused Ion Beam-Scanning Electron Microscopy (FIB-SEM) combined with Synchrotron X-ray Fluorescence mapping and High-Resolution Transmission Electron Microscopy imaging of FIB-prepared samples. Results show that Ge is preferentially incorporated within Fe-rich sphalerite with textural complexity finer than that of the microbeam used for the X-ray Absorption Near Edge Structure (XANES) measurements. Such heterogeneity, expressed as intergrowths between 3C sphalerite and 2H wurtzite on [ 1 1 ¯ 0 ] zones, could be the result of either a primary growth process, or alternatively, polystage crystallization, in which early Fe-Ge-rich sphalerite is partially replaced by Fe-Ge-poor wurtzite. FIB-SEM imaging shows evidence for replacement supporting the latter. Transformation of sphalerite into wurtzite is promoted by (111)* twinning or lattice-scale defects, leading to a heterogeneous ZnS sample, in which the dominant component, sphalerite, can host up to ~20% wurtzite. Ge K-edge XANES spectra for this sphalerite are identical to those of the germanite and argyrodite standards and the synthetic chalcogenide glasses GeS2 and GeSe2, indicating the Ge formally exists in the tetravalent form in this sphalerite. Fe K-edge XANES spectra for the same sample indicate that Fe is present mainly as Fe2+, and Cu K-edge XANES spectra are characteristic for Cu+. Since there is no evidence for coupled substitution involving a monovalent element, we propose that Ge4+ substitutes for (Zn2+, Fe2+) with vacancies in the structure to compensate for charge balance. This study shows the utility of synchrotron radiation combined with electron beam micro-analysis in investigating low-level concentrations of minor metals in common sulfides.
机译:利用微米到原子尺度的技术组合研究了墨西哥Tres Marias Zn矿床中富含Ge的闪锌矿中Ge的分布和取代机理。通过激光烧蚀电感耦合质谱法绘制的痕量元素图谱显示,锗与铁在相同的谱带中富集,富含锗的闪锌矿还含有可测量水平的其他几种微量元素,包括砷,铅和b。通过聚焦离子束扫描电子显微镜(FIB-SEM)结合Synchrotron X射线荧光成像和高分辨率透射电子显微镜对FIB-进行成像研究,揭示了样品的微米级至纳米级异质性准备好的样品。结果表明,Ge优先掺入富铁闪锌矿中,其结构复杂性比用于X射线吸收近边缘结构(XANES)测量的微束精细。这种异质性表示为[1 1¯0]上3C闪锌矿和2H纤锌矿之间的共生,可能是初级生长过程的结果,或者是多阶段结晶的结果,在该过程中部分富Fe-Ge的闪锌矿被部分替换贫铁锗酸锌矿。 FIB-SEM成像显示支持后者的替代证据。 (111)*孪晶或晶格尺度缺陷促进了闪锌矿向纤锌矿的转变,导致形成了异质ZnS样品,其中主要成分闪锌矿最多可容纳20%的纤锌矿。该闪锌矿的Ge K-edge XANES光谱与锗石和菱镁矿标准品以及合成硫属化物玻璃GeS 2 和GeSe 2 的光谱相同,表明Ge正式存在于闪锌矿中的四价形式。同一样品的Fe K-edge XANES光谱表明Fe主要以Fe 2 + 的形式存在,而Cu K-edge XANES光谱具有Cu + 的特征。由于没有证据表明涉及单价元素的偶合取代,因此我们建议用Ge 4 + 代替(Zn 2 + ,Fe 2 + )的结构中有空缺,以补偿费用余额。这项研究表明,同步辐射与电子束显微分析相结合,可用于研究常见硫化物中低含量的微量金属。

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