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Designing Versatile Superhydrophilic Structures via an Alginate-Based Hydrophilic Plasticene

The rational design of superhydrophilic materials with a controllable structure is a critical component in various applications, including solar steam generation, liquid spontaneous transport, etc. The arbitrary manipulation of the 2D, 3D, and hierarchical structures of superhydrophilic substrates i...

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Detalles Bibliográficos
Autores principales: Shi, Wenbo, Bai, Haoyu, Tian, Yaru, Wang, Xinsheng, Li, Zhe, Zhu, Xuanbo, Tian, Ye, Cao, Moyuan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10223521/
https://www.ncbi.nlm.nih.gov/pubmed/37241586
http://dx.doi.org/10.3390/mi14050962
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author Shi, Wenbo
Bai, Haoyu
Tian, Yaru
Wang, Xinsheng
Li, Zhe
Zhu, Xuanbo
Tian, Ye
Cao, Moyuan
author_facet Shi, Wenbo
Bai, Haoyu
Tian, Yaru
Wang, Xinsheng
Li, Zhe
Zhu, Xuanbo
Tian, Ye
Cao, Moyuan
author_sort Shi, Wenbo
collection PubMed
description The rational design of superhydrophilic materials with a controllable structure is a critical component in various applications, including solar steam generation, liquid spontaneous transport, etc. The arbitrary manipulation of the 2D, 3D, and hierarchical structures of superhydrophilic substrates is highly desirable for smart liquid manipulation in both research and application fields. To design versatile superhydrophilic interfaces with various structures, here we introduce a hydrophilic plasticene that possesses high flexibility, deformability, water absorption, and crosslinking capabilities. Through a pattern-pressing process with a specific template, 2D prior fast spreading of liquids at speeds up to 600 mm/s was achieved on the superhydrophilic surface with designed channels. Additionally, 3D superhydrophilic structures can be facilely designed by combining the hydrophilic plasticene with a 3D-printed template. The assembly of 3D superhydrophilic microstructure arrays were explored, providing a promising route to facilitate the continuous and spontaneous liquid transport. The further modification of superhydrophilic 3D structures with pyrrole can promote the applications of solar steam generation. The optimal evaporation rate of an as-prepared superhydrophilic evaporator reached ~1.60 kg·m(−2)·h(−1) with a conversion efficiency of approximately 92.96%. Overall, we envision that the hydrophilic plasticene should satisfy a wide range of requirements for superhydrophilic structures and update our understanding of superhydrophilic materials in both fabrication and application.
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spelling pubmed-102235212023-05-28 Designing Versatile Superhydrophilic Structures via an Alginate-Based Hydrophilic Plasticene Shi, Wenbo Bai, Haoyu Tian, Yaru Wang, Xinsheng Li, Zhe Zhu, Xuanbo Tian, Ye Cao, Moyuan Micromachines (Basel) Article The rational design of superhydrophilic materials with a controllable structure is a critical component in various applications, including solar steam generation, liquid spontaneous transport, etc. The arbitrary manipulation of the 2D, 3D, and hierarchical structures of superhydrophilic substrates is highly desirable for smart liquid manipulation in both research and application fields. To design versatile superhydrophilic interfaces with various structures, here we introduce a hydrophilic plasticene that possesses high flexibility, deformability, water absorption, and crosslinking capabilities. Through a pattern-pressing process with a specific template, 2D prior fast spreading of liquids at speeds up to 600 mm/s was achieved on the superhydrophilic surface with designed channels. Additionally, 3D superhydrophilic structures can be facilely designed by combining the hydrophilic plasticene with a 3D-printed template. The assembly of 3D superhydrophilic microstructure arrays were explored, providing a promising route to facilitate the continuous and spontaneous liquid transport. The further modification of superhydrophilic 3D structures with pyrrole can promote the applications of solar steam generation. The optimal evaporation rate of an as-prepared superhydrophilic evaporator reached ~1.60 kg·m(−2)·h(−1) with a conversion efficiency of approximately 92.96%. Overall, we envision that the hydrophilic plasticene should satisfy a wide range of requirements for superhydrophilic structures and update our understanding of superhydrophilic materials in both fabrication and application. MDPI 2023-04-28 /pmc/articles/PMC10223521/ /pubmed/37241586 http://dx.doi.org/10.3390/mi14050962 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Shi, Wenbo
Bai, Haoyu
Tian, Yaru
Wang, Xinsheng
Li, Zhe
Zhu, Xuanbo
Tian, Ye
Cao, Moyuan
Designing Versatile Superhydrophilic Structures via an Alginate-Based Hydrophilic Plasticene
title Designing Versatile Superhydrophilic Structures via an Alginate-Based Hydrophilic Plasticene
title_full Designing Versatile Superhydrophilic Structures via an Alginate-Based Hydrophilic Plasticene
title_fullStr Designing Versatile Superhydrophilic Structures via an Alginate-Based Hydrophilic Plasticene
title_full_unstemmed Designing Versatile Superhydrophilic Structures via an Alginate-Based Hydrophilic Plasticene
title_short Designing Versatile Superhydrophilic Structures via an Alginate-Based Hydrophilic Plasticene
title_sort designing versatile superhydrophilic structures via an alginate-based hydrophilic plasticene
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10223521/
https://www.ncbi.nlm.nih.gov/pubmed/37241586
http://dx.doi.org/10.3390/mi14050962
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