The Sipoholon geothermal area in North Sumatra, Indonesia, is located within a tectonically active pull-apart basin in the central segment of the Sumatra Fault System, providing an excellent setting to investigate isotopic depletion and lithium (Li) enrichment in a tectonically controlled geothermal system. This study evaluates the origin, evolution, and geochemical behavior of thermal waters using an integrated approach combining major ions, trace elements (Li and B), and stable isotopes (δ 18 O and δ 2 H). The hydrochemical data show systematic relationships between Na Cl and B Cl and a narrow salinity range, arguing against significant seawater or direct magmatic water input and supporting a dominantly meteoric origin. Piper diagram analysis identifies three hydrochemical facies, namely Mg–HCO₃ (dominant), Na–HCO₃, and Ca Cl, reflecting spatial variability in fluid evolution and water–rock interaction. Lithium and boron concentrations show positive correlations with Na, indicating progressive mobilization during subsurface circulation. Under the relatively low-temperature and shallow-reservoir conditions of the system, these trends are interpreted to reflect both primary silicate alteration and secondary clay-related processes, with Li more reliably recording cumulative water–rock interaction and residence time. Stable isotope compositions show marked δ 2 H depletion (down to −73‰) and variable δ 18 O shifts, particularly in Group I springs located within the pull-apart basin. These isotopic features suggest prolonged circulation and thermal re-equilibration in shallow reservoirs. Overall, the combined isotope and trace-element evidence indicates that Li enrichment in the Sipoholon system is most consistent with structurally controlled fluid retention, repeated circulation, and progressive geochemical evolution of heated meteoric water. These findings highlight the role of pull-apart basins in promoting trace-element enrichment and isotopic modification in tectonically controlled geothermal systems. • Meteoric fluids dominate Sipoholon geothermal system evolution. • Lithium enrichment linked to tectonically controlled fluid retention. • Pull-apart basin enhances residence time and fluid evolution. • Shallow geothermal reservoir constrained at ~80–150 °C.
Nukman et al. (Fri,) studied this question.
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