Symbiotic heat sharing in MOF-based atmospheric water generators for battery thermal management and sorbent regeneration

Atmospheric water harvesting (AWH) is limited by the high energy demand for sorbent regeneration, while battery thermal management dissipates substantial low-grade heat unused. Here, we propose a thermally symbiotic architecture integrating these systems. Battery discharge waste heat regenerates a MOF-303 sorbent layer via desorption, while the sorption process passively stabilizes battery temperature. The sorbent’s regeneration enthalpy aligns with the battery’s thermal output, triggering desorption under −12 to −20 A discharge. Within 46 min, the MOF exceeds 50 °C, releasing vapor for condensation in a sealed setup. Concurrently, sorption extracts heat from the battery, reducing peak temperatures by ~10 °C. Notably, this integrated system achieves a water production rate of 1.39 g g−1 day−1, a 117% increase over solar-driven counterparts. Finite-element simulations validate the heat transfer dynamics and identify key thermal efficiency parameters. This work establishes a closed-loop thermal cycle that repurposes energy-storage waste heat to power AWH, enabling sorbent regeneration without solar heating. The strategy offers a pathway to enhance thermal efficiency across various energy and environmental systems through internal heat recovery. This study demonstrates thermal symbiosis between battery thermal management and MOF atmospheric water harvesting. Battery waste heat regenerates the sorbent, while the sorbent helps moderate battery temperature and increases water yield.

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Journal
Nature Communications
Published
2026-09-15
DOI
https://doi.org/10.1038/s41467-026-76774-z
Primary Topic
Solar-Powered Water Purification Methods
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article
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article

Symbiotic heat sharing in MOF-based atmospheric water generators for battery thermal management and sorbent regeneration

Ady Suwardi, Sai Kishore Ravi, Yuxuan Tan, 闫林涛 et al.
Nature Communications
Solar-Powered Water Purification Methods
article

Symbiotic heat sharing in MOF-based atmospheric water generators for battery thermal management and sorbent regeneration

Ady Suwardi, Sai Kishore Ravi, Yuxuan Tan, 闫林涛, Yujie Ke, W.Z Chen, Swee Ching Tan, Zhixuan Chen, Mingyun Luo, Jinze Yao, Xianghui Liang, Anthony Chun Yin Yuen, Shuangfeng Wang, Weiqi Liu, Tingting Liao, Fan Luo, Fengwen Liu
article en

Abstract

Atmospheric water harvesting (AWH) is limited by the high energy demand for sorbent regeneration, while battery thermal management dissipates substantial low-grade heat unused. Here, we propose a thermally symbiotic architecture integrating these systems. Battery discharge waste heat regenerates a MOF-303 sorbent layer via desorption, while the sorption process passively stabilizes battery temperature. The sorbent’s regeneration enthalpy aligns with the battery’s thermal output, triggering desorption under −12 to −20 A discharge. Within 46 min, the MOF exceeds 50 °C, releasing vapor for condensation in a sealed setup. Concurrently, sorption extracts heat from the battery, reducing peak temperatures by ~10 °C. Notably, this integrated system achieves a water production rate of 1.39 g g−1 day−1, a 117% increase over solar-driven counterparts. Finite-element simulations validate the heat transfer dynamics and identify key thermal efficiency parameters. This work establishes a closed-loop thermal cycle that repurposes energy-storage waste heat to power AWH, enabling sorbent regeneration without solar heating. The strategy offers a pathway to enhance thermal efficiency across various energy and environmental systems through internal heat recovery. This study demonstrates thermal symbiosis between battery thermal management and MOF atmospheric water harvesting. Battery waste heat regenerates the sorbent, while the sorbent helps moderate battery temperature and increases water yield.

Nature Communications
Hong Kong Polytechnic University (HK), Shenzhen Institute of Information Technology (CN), Lingnan University (HK), National University of Singapore (SG), City University of Hong Kong (HK), Chinese University of Hong Kong (HK), South China University of Technology (CN)
Affordable and clean energy
Openalex Percentile: Top 29%
Solar-Powered Water Purification Methods
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