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High-yield atmospheric water capture via bioinspired material segregation

Fluid Dynamics 2024-10-24 v1 Soft Condensed Matter Applied Physics

Abstract

Atmospheric water harvesting is urgently needed given increasing global water scarcity. Current sorbent-based devices that cycle between water capture and release have low harvesting rates. We envision a radically different multi-material architecture with segregated and simultaneous capture and release. This way, proven fast-release mechanisms that approach theoretical limits can be incorporated; however, no capture mechanism exists to supply liquid adequately for release. Inspired by tree frogs and airplants, our capture approach transports water through a hydrogel membrane ``skin'' into a liquid desiccant. We report an extraordinarily high capture rate of 5.50 kgm2d1\text{kg}\,\text{m}^{-2}\,\text{d}^{-1} at a low humidity of 35%, limited by the convection of air to the device. At higher humidities, we demonstrate up to 16.9 kgm2d1\text{kg}\,\text{m}^{-2}\,\text{d}^{-1}, exceeding theoretical limits for release. Simulated performance of a hypothetical one-square-meter device shows that water could be supplied to two to three people in dry environments. This work is a significant step toward providing new resources to water-scarce regions.

Keywords

Cite

@article{arxiv.2310.04254,
  title  = {High-yield atmospheric water capture via bioinspired material segregation},
  author = {Yiwei Gao and Santiago Ricoy and Addison Cobb and Ryan Phung and Areianna Lewis and Aaron Sahm and Nathan Ortiz and Sameer Rao and H. Jeremy Cho},
  journal= {arXiv preprint arXiv:2310.04254},
  year   = {2024}
}

Comments

22 pages, 23 figures