4.7 Article

A flexible and salt-rejecting electrospun film-based solar evaporator for economic, stable and efficient solar desalination and wastewater treatment

期刊

CHEMOSPHERE
卷 267, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.chemosphere.2020.128916

关键词

Layered graphene; Electrospinning; Solar evaporation; Desalination; Water treatment

资金

  1. National Natural Science Foundation of China [41877389, 41703107, 42022056, 42077394, 21976186]
  2. National Key Research and Development Program of China [2016YFD0800300]
  3. Hundreds Talents Program of the Chinese Academy of Sciences
  4. Shenyang Pioneer Scientific and technological innovation talents team [RC190362]
  5. Liaoning Province Natural Science Foundation [2020-YQ-10]
  6. Youth Innovation Promotion Association CAS
  7. CAS Pioneer Hundred Talents Program
  8. Revitalize Liaoning Talents Program [XLYC1907136, XLYC1907118]
  9. Youth Start-up Fund of Shenyang Institute of Applied Ecology, CAS [E061371]

向作者/读者索取更多资源

A composite film was developed using layered graphene and polymethylmethacrylate to enhance solar absorption efficiency in a solar evaporator. This evaporator showed high stability, salt rejection capability, and suitability for desalinating seawater and wastewater.
Recently, interfacial solar evaporation has been developed for water treatment. However, the high cost and low stability of solar evaporators significantly hinder their practical applications. In this study, layered graphene and polymethylmethacrylate were used to fabricate a composited film (GF) by electrospinning, which acted as a solar absorber. Together with a water transporter (polyurethane sponge) and a thermal insulator (polystyrene foam), the GF-based evaporator was constructed for solar distillation. Taking advantage of the porous three-dimensional structure of GF, the light path could be extended, rendering an efficient broadband solar absorption (92%). More importantly, although the content of layered graphene in the GF-based evaporator (1.75 g m(-2)) was only 5.8-17.5% of that in the current reported graphene-based evaporators (10-30 g m(-2)), a comparable water evaporation efficiency was acquired, which was induced by the much higher utilization efficiency of photothermal nanomaterials in the GF-based evaporator than that in the reported devices, ensuring its economic feasibility. Meanwhile, more than 99.9% heavy metal ions and 99.8% organic dye could be removed by the GF-based evaporator. Combining the merits of long-term and stable evaporation, salt rejection, and resistance to harsh environment, the GF-based evaporator was promising for freshwater recycling from both seawater and wastewater. (C) 2020 Elsevier Ltd. All rights reserved.

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