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Cellulose-based bi-layer hydrogel evaporator with a low evaporation enthalpy for efficient solar desalination. | LitMetric

Cellulose-based bi-layer hydrogel evaporator with a low evaporation enthalpy for efficient solar desalination.

Carbohydr Polym

Jiangsu Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, Nanjing Forestry University, Nanjing 210037, China. Electronic address:

Published: March 2024

AI Article Synopsis

  • Interfacial evaporation using hydrogel-based evaporators offers a sustainable method for producing drinkable water through efficient solar desalination.
  • A bi-layer hydrogel evaporator was developed using cotton linter and polyaniline, which enhances light absorption and promotes effective water evaporation with minimal energy requirements.
  • The hydrogel evaporator achieves a water evaporation rate of 3.02 kg/m²/h and a photothermal conversion efficiency of 89.09% under sunlight, showcasing its potential for innovative solar water purification solutions.

Article Abstract

Interfacial evaporation through hydrogel-based evaporators is emerging as a sustainable and cost-effective strategy for drinkable water production. Herein, a specially designed bi-layer hydrogel evaporator was fabricated and used for efficient solar water desalination. With cotton linter as cellulose precursor, it was dispersed in a highly concentrated ZnCl (65 %) solution, and cross-linked by epichlorohydrin to prepare cellulose composite hydrogel. After removing inorganic salts by salt-leaching, polyaniline (PANi) with broadband and wide-range light absorption was then integrated into the top surface of hydrogel through in situ polymerization to construct a bi-layer evaporator. As a solar evaporator, the water could be evaporated with a low-energy demand, and the heat from the sunlight could be confined at the interface to achieve efficient water evaporation. Therefore, the hydrogel evaporator demonstrates an optimal water evaporation rate of 3.02 kg m h and photothermal conversion efficiency of 89.09 % under 1 sun (1 kW m) irradiation. This work provides new possibilities for efficient solar water purification systems with assured water quality.

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Source
http://dx.doi.org/10.1016/j.carbpol.2023.121695DOI Listing

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