Germanium-rich nanoparticles in Cu-poor sphalerite: A new mechanism for Ge enrichment

Author:

Sun Guotao12,Zhou Jia-xi13,Cugerone Alexandre4,Zhou Mei-fu5,Zhou Lingli6

Affiliation:

1. 1School of Earth Sciences, Yunnan University, Kunming 650500, China

2. 2College of Resources and Environmental Engineering, Guizhou University, Guiyang 550012, China

3. 3Key Laboratory of Critical Minerals Metallogeny, University of Yunnan Province, Kunming 650500, China

4. 4Department of Earth Sciences, University of Geneva, Geneva 1205, Switzerland

5. 5State Key Laboratory of Ore Deposit Geochemistry, Institute of Geochemistry, Chinese Academy of Sciences, Guiyang 550081, China

6. 6Faculty of Science, Vrije University Amsterdam, Amsterdam 1105, Netherlands

Abstract

Germanium (Ge) is a critical raw material used in high-technology industry (i.e., optical industry) applications, and it is predominantly concentrated in coals and Zn-rich deposits. Previous studies on Zn-rich deposits have documented a correlation between Ge enrichment and the Cu, Ag, and/or Pb-Mn contents in the sphalerite crystal lattice. In this study, we observed Ge-rich nanoparticles hosted in Cu-poor sphalerite from the Banbianjie Zn-Ge deposit (>800 t graded at ∼100 ppm Ge), located in southwest China. Laser-ablation−inductively coupled plasma−mass spectroscopy (LA-ICP-MS) analyses revealed that sphalerite contains very heterogeneous Ge contents (172−1553 ppm). Germanium contents showed positive correlations with Fe, Mn, and Pb contents and negative correlations with Cd contents. Higher Ge contents were detected in the darker zones, whereas the lighter zones showed systematically low Ge contents and were enriched in Cd. Using transmission electron microscopy (TEM), Zn-Ge-Pb-S nanoparticles were identified in the darker zones of sphalerite. These nanoparticles exhibited Ge/Pb ratios (0.48−1.96) very similar to those measured in sphalerite (0.36−2.04), suggesting that Ge could be essentially hosted within the nanoparticles. We propose that the amounts of Zn-Ge-Pb-S nanoparticles are related to a self-organization model induced by rapid crystal growth. This self-organization processes may control the fluctuations of element concentrations in the boundary layer. This study highlights the importance of studying the nanoscale expression of critical elements to understand their incorporation mechanisms into natural materials.

Publisher

Geological Society of America

Subject

Geology

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