光热治疗
MXenes公司
海水淡化
纳米技术
材料科学
蒸发
光热效应
微尺度化学
混合材料
纳米材料
表征(材料科学)
合理设计
异质结
光催化
光伏系统
热液循环
太阳能
纳米工程
表面改性
太阳能淡化
过程(计算)
作者
Mansoor Ul Hassan Shah,Rasheed Ahmad,A S M Mannafi,Muzammil Abbas,Farid Fadhillah,Syed Awais Ali,Kamaruzzaman Sopian,A. A. Assadi
摘要
ABSTRACT The escalating global freshwater crisis has intensified the search for efficient and sustainable desalination technologies. Solar‐assisted interfacial steam generation (ISSG) has emerged as a promising strategy because it localizes heat at the water–air interface, enabling efficient solar‐driven evaporation. The effectiveness of ISSG depends strongly on the properties of the photothermal materials used. Metal‐organic frameworks (MOFs) and MXenes have attracted attention because their complementary features can jointly enhance desalination performance. MOFs provide tunable porosity, high surface area, and versatile surface chemistry that promote water transport and mass transfer, whereas MXenes offer strong broadband light absorption, excellent electrical conductivity, and hydrophilic surfaces beneficial for photothermal conversion. However, each material alone faces limitations, including the low photothermal efficiency and structural instability of MOFs, and the restacking tendency and oxidation susceptibility of MXenes. This review comprehensively evaluates MOF–MXene hybrids as photothermal platforms, emphasizing their synergistic structural and functional integration. Hybridization strategies, including in situ growth under hydrothermal or solvothermal conditions and layer‐by‐layer assembly, are critically discussed in relation to interfacial interactions and desalination performance. The review analyzes structure–transport property relationships and compares MOFs, MXenes, and MOF–MXene hybrids in evaporation rate, solar‐to‐vapor efficiency, salt rejection, and saline stability, while outlining challenges and future design directions.
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