Md. Hobaib, Zhixi Wu, Md. Zahid Hasan, Wei Wei, Zhao Ding, Hao Chen, K. Z. M. Abdul Motaleb, Md. Belal Uddin Rabbi, Yang Zhou
The global shortage of freshwater, intensified by rising salinity in natural water sources, calls for scalable and energy-efficient desalination technologies. Interfacial solar-driven evaporation offers a promising solution, yet its practical implementation is hindered by high-cost photothermal materials and complex fabrication. Herein, we develop a flexible, self-floating electrospun bilayer membrane composed of Ce-doped Cu-based MOFs, multiwalled carbon nanotubes, polyvinylidene fluoride, and polyacrylonitrile, which was designed for efficient photothermal seawater desalination. A key distinguishing feature lies in the Ce doping strategy. During calcination, Cu-MOFs yield CuO and undesired Cu 2 O, which reduce photothermal efficiency. The introduced cerium species form CeO 2 /Ce 2 O 3 can catalytically oxidize residual Cu 2 O into CuO to enhance light absorption. X-ray photoelectron spectroscopy confirms the formation of CeO 2 /CuO heterojunctions with improved interfacial synergy. Under 1 kW·m –2 solar irradiation, the optimized membrane reaches a surface temperature of 61.4 °C and delivers a high evaporation rate of 1.98 kg·m –2 ·h –1 . The membrane exhibits strong mechanical strength, reaching a tensile value of 9.92 MPa. It also demonstrates a rapid thermal response by cooling from 61.4 to 26.1 °C within 90 min, which highlights its focus on efficient evaporation dynamics rather than heat retention. This work offers a cost-effective and scalable strategy for interfacial solar-driven evaporation membrane fabrication and introduces a Ce-assisted catalytic route to enhance photothermal conversion via compositional control and interfacial engineering.