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首页> 外文期刊>Journal of Colloid and Interface Science >Construction of hierarchical 2D/2D Ti3C2/MoS2 nanocomposites for high-efficiency solar steam generation
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Construction of hierarchical 2D/2D Ti3C2/MoS2 nanocomposites for high-efficiency solar steam generation

机译:用于高效太阳能蒸汽发电的等级2D / 2D Ti3C2 / MOS2纳米复合材料的构建

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Solar steam generation has been considered one of the most promising approaches for dealing with the energy and freshwater resource crises in recent years. However, achieving high efficiency in photothermal conversion remains a considerable challenge. Here, a series of hierarchical Ti3C2/MoS2 nanocomposites were designed for steam generation by a hydrothermal method. When the mass fraction of MoS2 reached 65 wt% (TM-3), the Ti3C2/MoS2 nanocomposite presented a strong broad-band light absorption of 92.4% from the UV to NIR region because of the accordion-like layered structure. The evaporation rate and solar-thermal conversion efficiency of the TM-3 with as-fabricated evaporator could reach 1.36 kg.m(-2)-h(-1) and 87.2% under 1 kW/m(2), due to the excellent light absorption ability of TM-3 and the low thermal energy loss (8.8%) of the evaporator. Meanwhile, TM-3 permits the evaporator to have remarkable cycle stability because of its hydrophobic properties. Moreover, TM-3 showed excellent seawater desalination and wastewater treatment abilities. Thus, the excellent light absorption ability, photo-thermal conversion efficiency, and stability of the overall system suggested that these nanocomposites show great potential applications in synergetic solar desalination and sewage treatment. (C) 2020 Elsevier Inc. All rights reserved.
机译:近年来,太阳能蒸汽发电被认为是应对能源和淡水资源危机最有希望的方法之一。然而,实现光热转换的高效率仍然是一个相当大的挑战。在这里,我们设计了一系列用于水热法蒸汽生成的Ti3C2/MoS2纳米复合材料。当MoS2的质量分数达到65 wt%(TM-3)时,Ti3C2/MoS2纳米复合材料呈现出从紫外到近红外的92.4%的强宽带光吸收,这是由于其具有手风琴状的层状结构。采用自制蒸发器的TM-3的蒸发率和光热转换效率可达1.36kg。m(-2)-h(-1)和87.2%(在1 kW/m(2)下),这是因为TM-3具有良好的光吸收能力和蒸发器的低热能损失(8.8%)。同时,由于其疏水性,TM-3允许蒸发器具有显著的循环稳定性。此外,TM-3还表现出良好的海水淡化和废水处理能力。因此,这些纳米复合材料优异的光吸收能力、光热转换效率和整个系统的稳定性表明,它们在协同太阳能脱盐和污水处理方面具有巨大的潜在应用前景。(C) 2020爱思唯尔公司版权所有。

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