All‐Day Multicyclic Atmospheric Water Harvesting Enabled by Polyelectrolyte Hydrogel with Hybrid Desorption Mode

Author:

Shan He123,Poredoš Primož23,Ye Zhanyu23,Qu Hao1,Zhang Yaoxin4,Zhou Mengjuan1,Wang Ruzhu23,Tan Swee Ching1ORCID

Affiliation:

1. Department of Materials Science and Engineering National University of Singapore 9 Engineering Drive 1 Singapore 117574 Singapore

2. Institute of Refrigeration and Cryogenics Shanghai Jiao Tong University 800 Dongchuan Road Shanghai 200240 China

3. Engineering Research Center of Solar Power & Refrigeration MOE China Shanghai 200240 China

4. China‐UK Low Carbon College Shanghai Jiao Tong University 3 Yinlian Road Shanghai 201306 China

Abstract

AbstractSorption‐based atmospheric water harvesting (AWH) is a promising approach for mitigating worldwide water scarcity. However, reliable water supply driven by sustainable energy regardless of diurnal variation and weather remains a long‐standing challenge. To address this issue, a polyelectrolyte hydrogel sorbent with an optimal hybrid‐desorption multicyclic‐operation strategy is proposed, achieving all‐day AWH and a significant increase in daily water production. The polyelectrolyte hydrogel possesses a large interior osmotic pressure of 659 atm, which refreshes sorption sites by continuously migrating the sorbed water within its interior, and thus enhancing sorption kinetics. The charged polymeric chains coordinate with hygroscopic salt ions, anchoring the salts and preventing agglomeration and leakage, thereby enhancing cyclic stability. The hybrid desorption mode, which couples solar energy and simulated waste heat, introduces a uniform and adjustable sorbent temperature for achieving all‐day ultrafast water release. With rapid sorption–desorption kinetics, an optimization model suggests that eight moisture capture–release cycles are capable of achieving high water yield of 2410 mLwater kgsorbent−1 day−1, up to 3.5 times that of single‐cyclic non‐hybrid modes. The polyelectrolyte hydrogel sorbent and the coupling with sustainable energy driven desorption mode pave the way for the next‐generation AWH systems, significantly bringing freshwater on a multi‐kilogram scale closer.

Funder

National Natural Science Foundation of China

China Scholarship Council

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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