This site requires Cookies enabled in your browser for login.
Updating ...
WaterNet Home
WaterNet
for
pour le
Canada
Menu
WaterNet
Home
GWFO
Home
Catalogue
Master Index
Data
Centre
Collections
X
Defaults
Select All
Websites
X
Global Water Futures Observatories (GWFO) Global Water Futures (GWF) Global Institute for Water Security (GIWS) International Network of Alpine Research Catchment Hydrology
Legacy Research Programs
X
Changing Cold Regions Network (CCRN) Drought Research Initiative (DRI) International Network of Alpine Research Catchment Hydrology (Legacy Site) Improving Processes & Parameterization for Prediction in Cold Regions Hydrology (IP3) The Mackenzie Global Energy and Water Cycle Experiment (GEWEX) Study (MAGS)
Legacy sites
Map
Utilities
X
Account Settings Create a New Record Record List Alias List Editor
Edit Data Centre
Data Types
. . .
X
Clear
Select All
Advanced Search
Go to Top⇡
Related items loading ...
Fetching Chart ...
Publication Additional Information Download
Publication Type
Journal Article
Authorship
Huang, L., Parsons, C.T., Sabur, M.A. et al.
Title
Phosphorus-mediated decoupling of Fe-Si cycling under variable oxygenation: implications for dissolved silicon release from natural sediments
Year
2026
Publication Outlet
ENG. Environ. 20, 89 (2026)
DOI
https://doi.org/10.1007/s11783-026-2189-6
Citation
Huang, L., Parsons, C.T., Sabur, M.A. et al. (2026) Phosphorus-mediated decoupling of Fe-Si cycling under variable oxygenation: implications for dissolved silicon release from natural sediments. ENG. Environ. 20, 89 https://doi-org.cyber.usask.ca/10.1007/s11783-026-2189-6
Abstract
The availability of dissolved silicon (DSi) relative to dissolved phosphorus (DP) regulates the dominance of siliceous phytoplankton in eutrophic waters, yet the redox controls on DSi internal loading from natural sediments remain uncertain. We incubated surficial sediments in ten parallel flow-through columns to disentangle Fe-P-Si interactions under alternating oxic and anoxic overlying waters. Columns containing 10 cm of sediment received anoxic influents with different combinations of Fe(II), DSi, and DP delivered through the bottom port using a peristaltic pump, while the effluent were monitored; post-experiment sediments were characterized using buffered ascorbatecitrate (BAC) and 1 mol/L NaOH extractions. Under oxic conditions, more than 90% of inflow Fe(II) was retained in the upper 1 cm of sediment, enriching BAC-extractable Fe and P by up to 40% relative to initial values. Transition to anoxia caused reductive dissolution of these phases, leading to Fe release of up to 193 ± 26 µmol/L and DP peaks of 160 ± 30 µmol/L in the overlying water. In contrast, DSi exhibited neither measurable retention during oxia nor systematic increases under anoxia, with effluent concentrations consistently exceeding influent levels by 20%–50%, indicating steady internal production. Mass-balance calculations show that DSi fluxes (20–40 µmol/d) were dominated by continuous dissolution of amorphous silica, while elevated DP suppressed Fe-Si co-precipitation via competitive sorption on Fe(III) solids. We conclude that the interplay among porewater DP and DSi production rates, along with the pool of reactive iron, governs the extent to which internal Si release responds to redox variations.
Program Affiliations
GWF: Global Water Futures
GWFO: Global Water Futures Observatories
Project Affiliations
GWF-LF: Lake Futures
Publication Stage
Published
Download Links
https://link-springer-com.cyber.usask.ca/content/pdf/10.1007/s11783-026-2189-6.pdf
© 2026 - WaterNet Version 2026-07-08
Global Water Futures Observatories
Powered by
G W F Net
T-2026-06-02-K1g9uukWyu0K23gtwx5et6Zg Publication 1.0