Liao Junjie, Hu Luyang, Wang Haoran, Yang Zhe, Wu Xiaonan, Zhang Yumin
School of Materials Science and Engineering, Anhui University of Science and Technology, Huainan 232001, China.
Anhui Industrial Generic Technology Research Center for New Materials from Coal-Based Solid Wastes, Huainan 232001, China.
Gels. 2025 May 17;11(5):368. doi: 10.3390/gels11050368.
Solar-driven interfacial evaporation has emerged as a sustainable and highly efficient technology for seawater desalination, attracting considerable attention for its potential to address global water scarcity. However, challenges such as low evaporation rates and salt accumulation significantly hinder the performance and operational lifespan of evaporators. Here, we present an innovative Janus-structured evaporator featuring distinct operational mechanisms through the integration of a hydrophobic PVDF-HFP@PPy photothermal membrane and a hydrophilic PVA-CF@TA-Fe hydrogel, coupled with a unidirectional flow configuration. Distinct from conventional Janus evaporators that depend on interfacial water transport through asymmetric layers, our design achieves two pivotal innovations: (1) the integration of a lateral fluid flow path with the Janus architecture to enable sustained brine replenishment and salt rejection and (2) the creation of dual vapor escape pathways (hydrophobic and hydrophilic layers) synergized with hydrogel-mediated water activation to elevate evaporation kinetics. Under 1 sun illumination, the evaporator achieves a maximum evaporation rate of 2.26 kg m h with a photothermal efficiency of 84.6%, in both unidirectional flow and suspension modes. Notably, the evaporation performance remains stable across a range of saline conditions, demonstrating remarkable resistance to salt accumulation. Even during continuous evaporation of highly saline water (10% brine), the evaporator maintains an evaporation rate of 2.10 kg m h without observable salt precipitation. The dual anti-salt strategies-enabled by the Janus structure and unidirectional flow design-underscore the evaporator's capability for sustained high performance and long-term stability in saline environments. These findings provide valuable insights into the development of next-generation solar evaporators that deliver high performance, long-term stability, and robustness in saline and hypersaline environments.
太阳能驱动的界面蒸发已成为一种可持续且高效的海水淡化技术,因其在解决全球水资源短缺方面的潜力而备受关注。然而,诸如蒸发速率低和盐分积累等挑战严重阻碍了蒸发器的性能和使用寿命。在此,我们展示了一种创新的Janus结构蒸发器,它通过集成疏水性PVDF-HFP@PPy光热膜和亲水性PVA-CF@TA-Fe水凝胶,并结合单向流动配置,具有独特的运行机制。与依赖通过不对称层进行界面水传输的传统Janus蒸发器不同,我们的设计实现了两项关键创新:(1)将横向流体流动路径与Janus结构相结合,以实现持续的盐水补给和盐分排斥;(2)创建与水凝胶介导的水活化协同作用的双蒸汽逸出路径(疏水层和亲水层),以提高蒸发动力学。在1个太阳光照下,该蒸发器在单向流动和悬浮模式下均实现了2.26 kg m⁻² h⁻¹的最大蒸发速率,光热效率为84.6%。值得注意的是,在一系列盐水条件下,蒸发性能保持稳定,显示出对盐分积累的显著抗性。即使在高盐水(10%盐水)的连续蒸发过程中,蒸发器仍保持2.10 kg m⁻² h⁻¹的蒸发速率,且无明显盐分沉淀。Janus结构和单向流动设计实现的双重抗盐策略强调了该蒸发器在盐水环境中持续高性能和长期稳定性的能力。这些发现为开发在盐水和高盐环境中具有高性能、长期稳定性和坚固性的下一代太阳能蒸发器提供了宝贵的见解。