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Renewable and Sustainable Energy Reviews· 2026Q1· Review

Hygroscopic porous polymer gels for sorption-based atmospheric water harvesting: A review from sorption mechanisms to materials design

Lei Shu, Qiongfen Yu, Ming Li, Shengnan Sun et al.

Short summary

Hygroscopic porous polymer gels (HPPGs) are identified as promising next-generation sorbents for atmospheric water harvesting, offering high water retention and design flexibility.

AI-generated from the title and abstract; the full text is not read.

Key points

  • Hygroscopic porous polymer gels (HPPGs) are crucial for sorption-based atmospheric water harvesting (SAWH).
  • HPPGs offer high water retention capacity and exceptional design flexibility.
  • The review analyzes performance regulation mechanisms and structural design strategies for HPPGs.
  • Key performance indicators for HPPGs include high water uptake, fast kinetics, low regeneration energy, and cycling stability.

AI-generated from the title and abstract; the full text is not read.

Abstract

Sorption-based atmospheric water harvesting (SAWH), which converts atmospheric moisture into freshwater, is regarded as a potential solution for alleviating global water scarcity. Among these, sorbents serve as key media for water vapour capture and release, playing a critical role in SAWH technologies. Hygroscopic porous polymer gels (HPPGs), which feature high water retention capacity and exceptional design flexibility, have emerged as promising candidates for next-generation sorbents in this field. The discussion starts by examining the fundamental processes that govern water vapour sorption in SAWH. We then elucidate the key properties of HPPGs and commonly used hygroscopic agents, with particular emphasis on their specific water uptake mechanisms. Based on this, the performance regulation mechanisms and structural design strategies of HPPGs are systematically analyzed and summarized with a focus on four core indicators, namely high water uptake capacity, fast kinetics, low regeneration energy consumption, and excellent cycling stability. The mechanistic analysis presented in this review connects sorbent-water interactions with material design, thereby providing theoretical guidance and design insights for the development of ideal HPPGs for SAWH.

The authors' abstract, as published at the source. Renewable and Sustainable Energy Reviews, 2026 · DOI ↗

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Field: Renewable Energy, Sustainability and the Environment

Renewable Energy, Sustainability and the EnvironmentEnergy