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Geochemical and hydrological controls on aragonite versus calcite precipitation in speleothems and paleoclimatic implications

  • Rui Zhang
  • , Haiwei Zhang
  • , Christoph Spötl
  • , Carlos Pérez-Mejías
  • , Zixin Guan
  • , Heather Stoll
  • , Yanjun Cai
  • , Liangcheng Tan
  • , Fudong Wang
  • , Xunlin Yang
  • , Yan Yang
  • , Lijuan Sha
  • , Jian Wang
  • , Yina Song
  • , Pengzhen Duan
  • , Youfeng Ning
  • , Hai Cheng
  • Xi'an Jiaotong University
  • CAS - Institute of Earth Environment
  • University of Innsbruck
  • Swiss Federal Institute of Technology Zurich
  • Southwest University of Science and Technology
  • Southwest University
  • Research Institute of Petroleum Exploration and Development

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Speleothem mineralogy (aragonite vs. calcite) and geochemical signatures are governed by complex hydrological and geochemical processes. However, previous studies have predominantly focused on geochemical constraints, whereas the role of cave hydrological processes in regulating carbonate polymorphism has received far less attention. Furthermore, long-term in situ monitoring of the environmental conditions controlling aragonite and calcite precipitation in natural cave settings remains limited. Here, we combine three years of cave monitoring in Shennong Cave, southeastern China, with glass-plate observations and a global dripwater compilation to show that carbonate polymorphism is governed by threshold effects in Mg/Ca–calcite saturation index (SIcc) space, and that precipitation-driven prior carbonate precipitation (PCarbP) favors aragonite precipitation by increasing Mg/Ca while maintaining relatively low SIcc. At Mg/Ca values ≥ 1000 mmol/mol, Mg/Ca defines the threshold for aragonite occurrence and crystal elongation, whereas pH and SIcc are most closely associated with depositional proportion and crystal habit, respectively, with aragonite evolving from slender needles to shorter, thicker bundles as supersaturation increases. At aragonite-precipitating sites, PCarbP during wetter periods drives spatial partitioning of carbonate polymorphs on glass plates, with calcite precipitating at the drip-impact point and aragonite toward the margins, providing direct modern-process evidence for calcite–aragonite fabrics in speleothems. Monitoring results further show that aragonite- and calcite-precipitating sites differ in their hydrological setting, the extent of PCarbP, and the magnitude of Mg/Ca fluctuations. At the seasonal scale, reduced effective infiltration and intensified in-cave degassing drive substantial Mg/Ca increases at aragonite-precipitating sites, whereas lower soil and epikarst pCO2 primarily enhances PCarbP at calcite-precipitating sites. At the interannual scale, dripwater Mg/Ca declined from approximately 2000 to 500 mmol/mol from 2022 and 2025, broadly tracking the long-term increase in regional precipitation. Overall, this study demonstrates how cave hydrology and PCarbP control carbonate polymorphism in cave systems, and indicates that dripwater Mg/Ca reflects different hydroclimatic controls across seasonal and interannual timescales, improving the interpretation of speleothem mineralogy and geochemical proxies in paleoclimate studies.

Original languageEnglish
Article number123517
JournalChemical Geology
Volume719
DOIs
StatePublished - 20 Sep 2026

Keywords

  • Aragonite
  • Calcite saturation index
  • Dripwater Mg/Ca ratio
  • Prior carbonate precipitation
  • Speleothem mineralogy

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