Methane Hydrates and Related PhenomenaMarine and coastal ecosystemsMarine Biology and Ecology Research

Fengying Li, Zhibo Shen, Shiheng Tang, Jianan Liu, Chunwei Fu, Airui Wang, Jiasen Zhong, Xin Quan, Yu Han, Ehui Tan, Shuh-Ji Kao

2026.1.1Water Research X

DOI: 10.1016/j.wroa.2025.100468

Abstract

Intertidal subterranean estuaries (STEs), as a critical component of the Earth's Critical Zone, are biogeochemical hotspots for greenhouse gas (GHGs: N 2 O, CH 4 , and CO 2 ) emissions. Tidal forcing fundamentally controls carbon and nitrogen cycles that driving the production/consumption of GHGs in muddy and sandy intertidal STEs. However, the sediment-dependent source/sink dynamics of GHGs and tidal responses remain poorly constrained. Through high-resolution spatiotemporal observations across sediment types in intertidal STEs, we show that the mudflat acted as a net GHGs source to coastal waters, whereas the sandy beach was a net sink of N 2 O but a source of CH 4 and CO 2 . Both types were net atmospheric GHGs sources, with CO 2 accounting for 79.05–99.88 %. The comparable magnitude of GHGs fluxes between sandy (N 2 O: 0.67±2.36 µmol m -2 h -1 ; CH 4 : 16.64±32.15 µmol m -2 h -1 ; CO 2 : 2722.19±1825.04 µmol m -2 h -1 ) and muddy (N 2 O: 2.12±1.96 µmol m -2 h -1 ; CH 4 : 69.19±163.41 µmol m -2 h -1 ; CO 2 : 4884.07±2680.89 µmol m -2 h -1 ) systems underscores the previously underestimated contribution of low-organic sandy coasts to marine GHGs budgets. Our analyses further identify pronounced tidal modulation of dissolved GHGs storage and transport pathways, including lateral (porewater exchange) and vertical (sediment/water-air interfaces) fluxes, with particularly strong tidal phase dependence in sandy environments. Global extrapolation of these observations estimates intertidal zones emissions at approximately 0.06±0.14 Tg N 2 O, 0.53±1.11 Tg CH 4 , and 191.22 ± 123.69 Tg CO 2 annually. These findings enhance mechanistic understanding of tidal-scale GHGs variability in coastal aquifers, highlighting the necessity to integrate hydrology and biogeochemistry into global GHGs budget to refine climate predictions.

Citation format

LI, Fengying, et al. Dual pathways of tide-driven greenhouse gas emissions via porewater advection and surface exchange in mudflat and sandy beach. Water Research X, 2026, 30: 100468.