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- W4284963578 abstract "Solar water evaporation is emerging as one of the most cost-effective and sustainable technologies for efficient seawater desalination. However, salt crystallization during solar desalination severely limits light absorption and reduces evaporation efficiency. Balancing the desirable evaporation rate and the suppressed salt crystallization is critical for long-term solar desalination, but remains a major challenge. In this work, 1T/2H MoS 2 nanoflower embedded in a macroporous PDMS sponge (MoS 2 /PDMS) was fabricated and used as a novel solar evaporator for efficient and durable solar desalination. Thanks to the broadband absorption of MoS 2 and the thermal insulating PDMS sponge, the MoS 2 /PDMS sponge presents a high evaporation rate of 1.47 kg m −2 h −1 and an evaporation efficiency of 81.5 % in pure water under one sun irradiation (1 kW m −2 ). Importantly, the MoS 2 /PDMS sponge with macroporous structure and wet-state hydrophilic wettability achieves efficient and durable solar desalination in simulated seawater (3.5 wt% NaCl solution), effectively suppressing salt crystallization. This finding offers a new way to design robust evaporators with structural flexibility, efficient evaporation and durable desalting for solar desalination. • Broadband MoS 2 nanoflowers are embedded in macroporous PDMS sponge. • MoS 2 /PDMS sponge bears a robust structure flexibility, lightweight and elasticity. • MoS 2 /PDMS sponge exhibits a high evaporation efficiency of 95.8 %. • MoS 2 /PDMS sponge exhibits excellent salt-resistance. • MoS 2 /PDMS sponge achieves high efficiency and durable solar desalination." @default.
- W4284963578 created "2022-07-10" @default.
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- W4284963578 date "2022-10-01" @default.
- W4284963578 modified "2023-09-30" @default.
- W4284963578 title "1T/2H MoS2 nanoflowers embedded in porous PDMS sponge with high salt-resistance for efficient and durable solar desalination" @default.
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- W4284963578 doi "https://doi.org/10.1016/j.desal.2022.115943" @default.
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