Gao Minmin, Peh Connor Kangnuo, Meng Fan Lu, Ho Ghim Wei
Department of Electrical and Computer Engineering, National University of Singapore, 4 Engineering Drive 3, Singapore, 117583, Singapore.
Institute of Materials Research and Engineering, A*STAR (Agency for Science, Technology and Research), 2 Fusionopolis Way, Singapore, 138634, Singapore.
Small Methods. 2021 May;5(5):e2001200. doi: 10.1002/smtd.202001200. Epub 2021 Feb 15.
Freshwater production is one of the biggest global challenges today. Though desalination can provide a climate-independent source of clean water, the process requires a high energy consumption. Emerging advancement of photothermal nanomaterials and the urgent demand for a green technology transition have reinvigorated the established solar distillation technology. The current development of photothermal vaporization focuses on material innovation and interfacial heating, which largely emphasizes vapor generation efficiency, without considering pragmatic water collection. Moreover, salt accumulation is another critical issue of seawater solar-driven vaporization. The incorporation of photothermal materials into a photothermal membrane distillation (PMD) solar evaporator design harmoniously resolves these issues through combination of renewable energy and efficient interfacial distillation, to achieve the ultimate goal of practical saline water into freshwater conversion. At this juncture, it is imperative to review the recent opportunities and progresses of the PMD system. Here, the fundamental photothermal processes, strategies for efficient evaporator design, evaluation of various criteria for photothermal material incorporation with desired properties, discussions on desalination, water treatment, and energy generation applications are covered. Guidelines in material and system designs to further advance the PMD system that is highly promising in delivering portable water for both large-scale and decentralized systems are provided.
淡水生产是当今全球面临的最大挑战之一。尽管海水淡化可以提供一种不受气候影响的清洁水源,但该过程需要高能耗。光热纳米材料的新进展以及对绿色技术转型的迫切需求,为传统的太阳能蒸馏技术注入了新的活力。当前光热汽化的发展重点在于材料创新和界面加热,这在很大程度上强调了蒸汽产生效率,而没有考虑实际的集水问题。此外,盐分积累是海水太阳能驱动汽化的另一个关键问题。将光热材料纳入光热膜蒸馏(PMD)太阳能蒸发器设计中,通过将可再生能源与高效界面蒸馏相结合,和谐地解决了这些问题,以实现将实际盐水转化为淡水的最终目标。在这个关头,审视PMD系统最近的机遇和进展势在必行。在此,涵盖了基本的光热过程、高效蒸发器设计策略、对具有所需特性的光热材料纳入的各种标准的评估、关于海水淡化、水处理和能源生产应用的讨论。还提供了材料和系统设计方面的指导方针,以进一步推进在为大规模和分散式系统提供便携式水方面极具前景的PMD系统。