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March 3, 2026Geophysical Research Letters1 citationsOpen Access

Thinking Outside the Rocks: Subsurface Water Storage, Topography, and Land Cover Are Key Modulators of Large‐Scale Riverine Dissolved Silicon Dynamics

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SBSidney BushKJKeira JohnsonKJKathi Jo Jankowski

Key Points

  • Dissolved silicon (DSi) yields exhibit a strong relationship with watershed variables, achieving R² values of 0.96.
  • Analysis of 337 rivers globally highlights how lithology, especially volcanic rock, impacts DSi concentrations significantly.
  • Machine-learning models utilized assessed data points and elucidated nonlinear responses based on topography and hydrologic factors.
  • Findings underscore the necessity for integrating realistic processes into forecasting models under climate change conditions.

Abstract

Abstract Riverine dissolved silicon (DSi) dynamics reflect integrated geologic, hydrologic, climatic, and ecological controls. We compiled annual DSi data for 337 rivers across four continents and trained interpretable machine‐learning models to predict concentrations and yields from 28 watershed variables. Both models reproduced testing data ( R 2 = 0.85 for concentration and 0.96 for yield) and withheld‐site validation ( R 2 = 0.91 and 0.93). Lithology, especially volcanic rock fraction, strongly controlled DSi while subsurface storage, topography, and land cover further shaped DSi dynamics. DSi concentrations and yields exhibited nonlinear responses to basin slope, recession‐curve slope, proportion of open‐water cover, and nutrient availability. Concentrations showed sharper threshold responses to hydrologic and biotic variables, whereas yields varied more gradually with climate and lithology. These results provide a framework for forecasting DSi under land cover and climate change and for embedding realistic, nonlinear processes in mechanistic models.

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Cite This Study

Bush et al. (2026) studied this question.

synapsesocial.com/papers/69a75d28c6e9836116a26bb4https://doi.org/10.1029/2025gl118853
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