Add BrightSurf on Google Email

Can wind be harnessed to capture and convert atmospheric water into freshwater?

08.05.26 | Wiley
Apple AirPods Pro (2nd Generation, USB-C)

Apple AirPods Pro (2nd Generation, USB-C) provide clear calls and strong noise reduction for interviews, conferences, and noisy field environments.

Sorption-based atmospheric water harvesting captures water vapor from the air using specialized materials, or sorbents, and thermal energy to produce freshwater. In research published in Advanced Functional Materials , investigators developed a wind-driven strategy that they showed provides a cost-effective and sustainable approach to freshwater production.

The strategy involves the use of what’s called hygroscopic polymer sponges that are very porous and take up water. The sponges are integrated with wind-powered eddy current heating, a process that converts wind kinetic energy into thermal energy to release water from the saturated sponges. Under fluctuating ambient air conditions, the method generated 9.9 liters of water per day for every 1 kilogram of sponge material.

“Most sorption-based atmospheric water harvesting systems rely on solar thermal energy or electrically generated heat for sorbent regeneration,” said corresponding author Haiqing Li, PhD, of Nanjing Tech University, in China. “Our work introduces wind-powered eddy current heating as a new renewable-energy pathway that bypasses the intermediate electricity generation step and directly converts wind kinetic energy into heat with an energy conversion efficiency exceeding 90%, broadening the range of renewable energy sources available for atmospheric water harvesting.”

The strategy could support off-grid freshwater production, particularly in wind-rich coastal and island communities, as well as remote regions where access to freshwater or reliable electrical infrastructure is limited.

URL upon publication: https://onlinelibrary.wiley.com/doi/10.1002/adfm.77465

Additional Information
NOTE:
The information contained in this release is protected by copyright. Please include journal attribution in all coverage. For more information or to obtain a PDF of any study, please contact: Sara Henning-Stout, newsroom@wiley.com .

About the Journal
Advanced Functional Materials , part of Wiley's Advanced Portfolio of high impact collaborative journals and a top-tier materials science journal, publishes outstanding research related to improving chemical and physical properties of materials. By covering a broad scope and providing breakthrough research on all aspects of materials science, our readers range from materials scientists, chemists, physicists, and engineers, together with biologists and medical researchers. The Advanced portfolio from Wiley is a family of globally respected, high-impact journals that disseminate the best science from well-established and emerging researchers to fulfill their mission and maximize the reach of their scientific discoveries.

About Wiley
Wiley is a global leader in authoritative content and research intelligence for the advancement of scientific discovery, innovation, and learning. With more than 200 years at the center of the scholarly ecosystem, Wiley combines trusted publishing heritage with AI-powered platforms to transform how knowledge is discovered, accessed, and applied. From individual researchers and students to Fortune 500 R&D teams, Wiley enables the transformation of scientific breakthroughs into real-world impact. From knowledge to impact—Wiley is redefining what's possible in science and learning. Visit us at Wiley.com and Investors.Wiley.com . Follow us on Facebook , X , LinkedIn and Instagram .

Advanced Functional Materials

10.1002/adfm.77465

Wind-Driven Atmospheric Water Harvesting Enabled by Highly Interconnected Macroporous Hygroscopic Polymer Sponges and Eddy Current Heating

5-Aug-2026

Keywords

Article Information

Contact Information

Sara Henning-Stout
Wiley
newsroom@wiley.com

Source

This article is based on a news release from Wiley. BrightSurf curates and republishes science news from research institutions worldwide; the original release is linked below.

How to Cite This Article

APA:
Wiley. (2026, August 5). Can wind be harnessed to capture and convert atmospheric water into freshwater?. Brightsurf News. https://www.brightsurf.com/news/1EO9237L/can-wind-be-harnessed-to-capture-and-convert-atmospheric-water-into-freshwater.html
MLA:
"Can wind be harnessed to capture and convert atmospheric water into freshwater?." Brightsurf News, Aug. 5 2026, https://www.brightsurf.com/news/1EO9237L/can-wind-be-harnessed-to-capture-and-convert-atmospheric-water-into-freshwater.html.