TY - JOUR
T1 - Biodegradable facilitation mimics extend the window of opportunity for salt marsh establishment
AU - Li, Zhaohui
AU - Xu, Yuan
AU - Wang, Xianye
AU - Shen, Jian
AU - Ma, Siyuan
AU - Chu, Xiangqian
AU - Zhao, Zhiyuan
AU - Yin, Yanchen
AU - Xi, Xiaosong
AU - Wang, Lingli
AU - Yuan, Lin
N1 - Publisher Copyright:
© 2026 Elsevier Ltd
PY - 2026/5/15
Y1 - 2026/5/15
N2 - Coastal wetlands provide critical ecosystem services and function as natural buffers against coastal hazards, yet they are increasingly degraded by human activities and climate change. Restoration is often constrained by strong hydrodynamic forcing and unstable sediment substrates, which narrow the “Window of Opportunity” (WoO) for seedling establishment. Three-dimensional (3D) biodegradable structures serve as Nature-based Solutions (NbS) by mimicking the facilitation functions of vegetation to mitigate these stressors, but their mechanistic role in mediating biophysical feedbacks and extending the WoO remains insufficiently understood. Here, we designed saltmarsh-specific 3D biodegradable structures that mimic key ecological facilitation traits and tailored them to local environmental conditions. Flume experiments quantified hydrodynamic attenuation and sediment stabilization mechanisms, which were subsequently validated in field experiments across natural hydrodynamic gradients. Results showed that aboveground structures attenuated flow velocity and reduced seedling bending, while belowground components enhanced sediment cohesion, elevated erosion thresholds, and stabilized substrates prior to root system development. Establishment success differed between seed sowing and seedling transplantation, with structure effectiveness varying across exposure gradients, demonstrating strong context dependence in WoO expansion. Overall, these findings demonstrate that biodegradable facilitation mimics can effectively extend the WoO for salt marsh establishment under variable hydrodynamic conditions.
AB - Coastal wetlands provide critical ecosystem services and function as natural buffers against coastal hazards, yet they are increasingly degraded by human activities and climate change. Restoration is often constrained by strong hydrodynamic forcing and unstable sediment substrates, which narrow the “Window of Opportunity” (WoO) for seedling establishment. Three-dimensional (3D) biodegradable structures serve as Nature-based Solutions (NbS) by mimicking the facilitation functions of vegetation to mitigate these stressors, but their mechanistic role in mediating biophysical feedbacks and extending the WoO remains insufficiently understood. Here, we designed saltmarsh-specific 3D biodegradable structures that mimic key ecological facilitation traits and tailored them to local environmental conditions. Flume experiments quantified hydrodynamic attenuation and sediment stabilization mechanisms, which were subsequently validated in field experiments across natural hydrodynamic gradients. Results showed that aboveground structures attenuated flow velocity and reduced seedling bending, while belowground components enhanced sediment cohesion, elevated erosion thresholds, and stabilized substrates prior to root system development. Establishment success differed between seed sowing and seedling transplantation, with structure effectiveness varying across exposure gradients, demonstrating strong context dependence in WoO expansion. Overall, these findings demonstrate that biodegradable facilitation mimics can effectively extend the WoO for salt marsh establishment under variable hydrodynamic conditions.
KW - 3D biodegradable structures
KW - Hydrodynamic attenuation
KW - Nature-based solutions
KW - Salt marsh restoration
KW - Sediment stabilization
KW - Window of opportunity
UR - https://www.scopus.com/pages/publications/105038883150
U2 - 10.1016/j.jenvman.2026.129945
DO - 10.1016/j.jenvman.2026.129945
M3 - 文章
AN - SCOPUS:105038883150
SN - 0301-4797
VL - 408
JO - Journal of Environmental Management
JF - Journal of Environmental Management
M1 - 129945
ER -