Wenbo Zhang, Xin Eric Wang, Zishuai Jiang, Hui Wang, Kunyang Liu, Miao Sun, Zhaolin Yang, Cong Li, Xiaohan Sun, Jiazuo Zhou, Yifan Liu, Yuan Yu, Qichao Ma, Fangmiao Wang, Xinyao Ji, Lei Qiao, Shuaijie Ba, Haiyue Yang, Zuankai Wang, Chengyu Wang
The water–energy–food (WEF) nexus is vital for addressing global resource crises, but intersystem trade-offs challenge holistic management. Interfacial evaporation-driven osmotic energy harvesting platforms offer a proactive solution, enabling concurrent freshwater and electricity production via seawater evaporation and high salinity gradients. However, solar energy fluctuations and salt/oil contamination in evaporators undermine water/power output and durability. To tackle these issues, an encased phase-change hydrogel (EPCH) is developed, integrating a phase-change hydrogel (PCH) within a polyurethane sponge matrix with different wetting properties. Its superhydrophobic photothermal layer ensures robust light absorption and photothermal conversion, while embedded phase-change microcapsules store and release latent heat to mitigate solar intermittency. The lateral hydrophilic polydopamine coating promotes rapid ion/water transport and underwater superoleophobicity for effective oily seawater desalination. The introduction of the PCH improves solar energy utilization efficiency by 27%, while the EPCH-coupled reverse electrodialysis (RED) delivers a 146% enhancement in power density relative to the uncoupled configuration. This study presents a refined multi-coupling framework for WEF platform optimization, advancing sustainable resource management through material engineering and system integration. • An encased phase-change hydrogel (EPCH) enables antifouling and self-adaptive thermal regulation for stable solar evaporation. • EPCH-coupled reverse electrodialysis (RED) achieves stable water–energy output in complex environments. • A synergistic water–energy–food platform is realized by integrating EPCH, RED and hydroponics.