Issue 20, 2024

Design of a bifunctional Janus structure for high efficiency solar distillation in hypersaline brine

Abstract

In solar desalination, resolving the durability and efficiency losses stemming from salt precipitation has become a long sought-after goal. We showcase the design for a facile, yet high efficiency solar distillation device that exhibits durable operation in hypersaline brine, where a bifunctional Janus structure is introduced for self-driven salt resistance and photothermal conversion. A Janus scaffold was constructed using an acrylate hydrogel and polyvinylidene difluoride (PVDF) for self-driven salt resistance; the polyelectrolyte effect of the gel prevents ion accumulation and the hydrophobic PVDF suppresses ion diffusion to the evaporative interface. Then, the hydrophobic part was functionalized with a new light absorber, a Ni/C nano-composite, to achieve effective photothermal conversion across the full solar spectrum. The evaporator is capable of 14 days of continuous working in hypersaline brine (10 wt% NaCl) at a rate of 1.56 kg m−2 h−1, which is among the best reported durabilities and approaches the theoretical limit. Hopefully, the new design will greatly expand the ability of solar desalination to work in extreme environments.

Graphical abstract: Design of a bifunctional Janus structure for high efficiency solar distillation in hypersaline brine

Supplementary files

Article information

Article type
Research Article
Submitted
06 Jul 2024
Accepted
08 Sep 2024
First published
10 Sep 2024

Inorg. Chem. Front., 2024,11, 7152-7159

Design of a bifunctional Janus structure for high efficiency solar distillation in hypersaline brine

Y. Han, Y. Du, L. Zhu, Y. Liu, B. Hu, B. Sun and F. Han, Inorg. Chem. Front., 2024, 11, 7152 DOI: 10.1039/D4QI01705F

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