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March 18, 2026Minerals0 citationsOpen Access

Mineralogical and Geochemical Characteristics of Biotite in Granite from the Guanfang Tungsten Deposit, Bozhushan, Southeastern Yunnan, and Their Implications for Petrogenesis and Mineralization

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DZDa ZhangLCLi ChenXCXianchao Chen

Key Points

  • The central aim is to analyze the mineralogical and geochemical characteristics of biotite in the Guanfang granite to understand its petrogenesis and mineralization potential.
  • Conducted mineral chemistry analysis of biotite using electron probe microanalysis (EPMA).
  • Performed laser ablation inductively coupled plasma mass spectrometry (LA-ICP-MS) for geochemical analysis.
  • Measured crystallization conditions, such as temperature and pressure, based on biotite chemistry.
  • Utilized geochemical discrimination diagrams to classify granite type.
  • Biotite exhibits high euhedrality with reduced Na and Ca contents, indicating primary magmatic origin.
  • Crystallization conditions suggest temperatures of 700–720 °C and pressures of 1.22–1.73 kbar.
  • Geochemical signatures of biotite suggest potential for W-Sn and polymetallic mineralization.
  • Discovery of industrial ore bodies aligns with metallogenic characteristics identified in biotite chemistry.

Abstract

The Guanfang tungsten deposit in the Bozhushan ore district, southeastern Yunnan, is genetically linked to Late Yanshanian granitic intrusions. To elucidate the petrogenesis and mineralization potential of the causative granite, this study presents a detailed mineral chemical analysis of biotite from the Guanfang pluton using electron probe microanalysis (EPMA) and laser ablation inductively coupled plasma mass spectrometry (LA-ICP-MS). The biotite crystals exhibit relatively high euhedrality, show no obvious alteration features, and are chemically characterized by reduced Na and Ca contents. These features, along with petrographic observations, confirm its origin as primary magmatic biotite. Crystallization conditions, calculated from biotite chemistry, indicate temperatures of 700–720 °C and pressures of 1.22–1.73 kbar, corresponding to a mesozonal emplacement depth of 4.6–6.5 km. Oxygen fugacity estimates, plotting near the Ni-NiO buffer, reveal an oxidized magmatic environment. Geochemical discrimination diagrams suggest the Guanfang granite exhibits transitional features between S-type and I-type affinities and is classified as a syn-melting (high-temperature) type. The biotite contains relatively low F (0.71–0.97 wt%), but elevated Cl (0.13–0.20 wt%) and Sn (43–56 µg/g) contents. This specific geochemical signature—combined with the medium- to high-temperature crystallization setting—is highly favorable for W-Sn mineralization. Furthermore, the high-Ti, syn-melting character of the granite implies additional potential for Cu-Pb-Zn-Au-Ag polymetallic mineralization. This study employs biotite chemistry to assess the petrogenesis and metallogenic potential of the Guanfang granite. The subsequent discovery of industrial ore bodies corresponding to some of the elements identified as having metallogenic potential confirms the feasibility of this approach. Accordingly, this method provides a new tool for future exploration in the Bozhushan district.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69ba43e94e9516ffd37a5959https://doi.org/10.3390/min16030310
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