Issue 25, 2023

Tree-inspired braiding fibrous frameworks enabling high-efficiency and salt-rejecting solar evaporation

Abstract

Solar steam generation (SSG) in a green way for desalination is a promising application, but achieving high-efficiency and salt-rejecting SSG is still a challenge, especially in hypersaline brines. In this study, a bioinspired composite fibrous framework (BCFF), inspired by the ecological structure of natural trees, was designed with photothermal carbon fibers and hydrophilic polypyrrole-decorated Tencel via a textile braiding technology. The morphology of trees with strong trunks and lush leaves was mimicked to regulate the micro/macrostructure distribution and illumination area of BCFFs. The BCFF exhibits a high evaporation rate of 4.58 kg m−2 h−1 under one sun illumination via distributed photothermal conversion. Importantly, considering the salt fouling resulting from the imbalance between water supply and steam evaporation, a rational design of BCFFs is proposed to perform stable desalination. The experimental results indicated that the BCFF can achieve stable solar desalination even in 15 wt% brine over several operation cycles. Furthermore, the desalination and purification performance is competitive in the practical environment with a daily water collection of over 20 L m−2. This bioinspired evaporator balances excellent effectiveness and practicality, providing a viable path for solar desalination.

Graphical abstract: Tree-inspired braiding fibrous frameworks enabling high-efficiency and salt-rejecting solar evaporation

Supplementary files

Article information

Article type
Paper
Submitted
04 Apr 2023
Accepted
25 May 2023
First published
25 May 2023

J. Mater. Chem. A, 2023,11, 13510-13518

Tree-inspired braiding fibrous frameworks enabling high-efficiency and salt-rejecting solar evaporation

D. Xu, C. Ge, Z. Chen, Y. Liu, T. Chen, C. Gao, K. Liu, W. Xu, Q. Zhang and J. Fang, J. Mater. Chem. A, 2023, 11, 13510 DOI: 10.1039/D3TA02029K

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