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May 9, 2026Nature Communications3 citationsOpen Access

Hygroscopic wood sponge with dual phase change function for enhanced all-weather atmospheric water harvesting

XJXinyao JiHSHe ShanJZJiazuo Zhou

Key Points

  • This research aims to develop a hybrid wood composite to improve atmospheric water harvesting efficiency under varying conditions.
  • Designed a hybrid solar and phase-change-material hygroscopic wood composite integrating a water-sorption zone and energy-management zone.
  • Measured water uptake and sorption kinetics at different relative humidity levels.
  • Conducted outdoor tests to assess daily water yield in various climatic conditions.
  • Achieved water uptake capacity ranging from 0.59 to 3.03 g g⁻¹ at 15-90% relative humidity, reaching equilibrium in 360 minutes.
  • The photothermal hydrogel provided a heat-storage enthalpy of 155.51 J g⁻¹ with an energy-conversion efficiency of 90.80%.
  • Large-scale PHW array yielded 0.96–1.72 L water kg⁻¹ day⁻¹ through continuous multi-cycle sorption-desorption.

Abstract

Sorption-based atmospheric water harvesting (AWH) is a promising approach to relieve water scarcity in off-grid arid regions. Practical deployment remains limited by slow sorption kinetics caused by diffusion resistance and by intermittent desorption under diurnal and weather-dependent solar input. Here we report a hybrid solar and phase-change-material (PCM) hygroscopic wood composite (PHW) that integrates a water-sorption zone and an energy-management zone. The sorption zone uses a LiCl-embedded wood sponge with vertically aligned, multilayer channels to accelerate mass transport and shorten the time to equilibrium. The energy-management zone employs a PCM-based photothermal hydrogel to enhance solar-to-thermal conversion and store heat for sustained desorption. The PHW achieves a water uptake capacity of 0.59–3.03 g g-1 at 15-90% RH and reaches equilibrium within 360 min. The PCM hydrogel provides a heat-storage enthalpy of 155.51 J g-1 and an energy-conversion efficiency of 90.80%, enabling continuous water release under weak light and in darkness. In outdoor tests across cool winter and hot summer conditions and in different climate regions, a large-scale PHW array delivers a daily water yield of 0.96–1.72 Lwater kgsorbent-1 day-1 via continuous multi-cycle sorption–desorption. This hybrid sorption and thermal-management strategy advances all-weather AWH and improves real-world applicability. Most atmospheric water harvesters suffer from slow sorption and intermittent solar-driven desorption. Here, the authors develop a hybrid wood composite with a phase change material that stores solar heat. It rapidly captures water across a wide humidity range and releases it continuously, even in darkness, achieving a daily yield of 0.96–1.72 L kg⁻¹.

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Cite This Study

Ji et al. (2026) studied this question.

synapsesocial.com/papers/69fed123b9154b0b828785f5https://doi.org/10.1038/s41467-026-72723-y
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