Related Experiment Video
Updated: Sep 20, 2025

Proof-of-Concept for Gas-Entrapping Membranes Derived from Water-Loving SiO2/Si/SiO2 Wafers for Green Desalination
Published on: March 1, 2020
Surface Roughness Engineering for High-Salt-Tolerant Solar Evaporator with Enhanced Efficiency in Sustainable
Mengxue Zhang1, Laigang Hu1, Yang Guo1
1State Key Laboratory of Soil Pollution Control and Safety, Key Laboratory of Environmental Pollution and Ecological Health of Ministry of Education, College of Environmental and Resource Sciences, Zhejiang University, Hangzhou, 310058, China.
Abstract:
The accumulation of dense crystal layers on solar evaporators compromises the performances by reducing light absorption efficiency and obstructing water transport channels, ultimately diminishing evaporation rate. To mitigate this issue, spatially separated crystallization sites can be engineered on the evaporator surface to disrupt salt adhesion and prevent dense layers formation. In this study, a 3D column-shaped wood evaporator (KOH-activated carbon- delignified wood (KAC-DW)) is developed by coating DW with KAC. The KAC coating creates microstructured surface featuring abundant protrusions (≈144 mm-2, each 20 μm in height), which effectively inhibit salt crystal adhesion. Under 1 kW m-2 solar radiation with a 15 wt% NaCl solution, the KAC-DW evaporator achieves an impressive water evaporation rate of 8.18 kg m-2 h-1 over 96 h (0 m s-1 wind speed)-more than double the performance of uncoated DW (3.91 kg m-2 h-1). This enhancement stems from two key mechanisms: 1) the KAC protrusions prevent dense crystal layer formation, preserving open surface channels for evaporation, and 2) they promote the growth of loose salt crystals, thereby expanding the effective evaporation area and further boosting the evaporation rate.
Related Concept Videos
Responses to Salt Stress
Adaptations that Reduce Water Loss

