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Architecting highly hydratable polymer networks to tune the water state for solar water purification
Author(s) -
Xingyi Zhou,
Fei Zhao,
Youhong Guo,
Brian Rosenberger,
Guihua Yu
Publication year - 2019
Publication title -
science advances
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.928
H-Index - 146
ISSN - 2375-2548
DOI - 10.1126/sciadv.aaw5484
Subject(s) - vaporization , portable water purification , materials science , polyvinyl alcohol , distillation , chemical engineering , evaporation , purified water , polymer , solar energy , water vapor , solar still , environmental science , chemistry , environmental engineering , desalination , organic chemistry , meteorology , composite material , engineering , ecology , biochemistry , physics , membrane , biology
Water purification by solar distillation is a promising technology to produce fresh water. However, solar vapor generation, is energy intensive, leading to a low water yield under natural sunlight. Therefore, developing new materials that can reduce the energy requirement of water vaporization and speed up solar water purification is highly desirable. Here, we introduce a highly hydratable light-absorbing hydrogel (h-LAH) consisting of polyvinyl alcohol and chitosan as the hydratable skeleton and polypyrrole as the light absorber, which can use less energy (<50% of bulk water) for water evaporation. We demonstrate that enhancing the hydrability of the h-LAH could change the water state and partially activate the water, hence facilitating water evaporation. The h-LAH raises the solar vapor generation to a record rate of ~3.6 kg m hour under 1 sun. The h-LAH-based solar still also exhibits long-term durability and antifouling functionality toward complex ionic contaminants.

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