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February 2, 2026ACS Applied Materials & Interfaces2 citations

Solar Steam Generation: A Recyclable and Hydrophilic Polydopamine/Polyurethane Bio-Foam

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JZJiale ZongBeijing Technology and Business UniversityDWDaxin WangBeijing Technology and Business UniversityNZN.H. ZhengBeijing Technology and Business University

Key Points

  • The aim is to develop a highly efficient, recyclable solar-driven evaporation system to address freshwater scarcity.
  • Synthesized a biobased polydopamine/polyurethane foam.
  • Measured photothermal conversion under laser and sunlight.
  • Assessed water evaporation rates in simulated sunlight and seawater.
  • Conducted cyclic experiments to evaluate stability and self-cleaning performance.
  • Evaluated the foam's degradability in the presence of enzymes.
  • Achieved a maximum temperature of 90.0 °C under laser irradiation.
  • Demonstrated a water evaporation rate of 1.39 kg m<sup>-2</sup> h<sup>-1</sup> under simulated sunlight.
  • Showed stable water evaporation at 1.34 kg m<sup>-2</sup> h<sup>-1</sup> in natural seawater.
  • Exhibited excellent continuous stability in a 12-hour cyclic experiment.
  • Confirmed good recyclability with complete degradation within 72 hours in enzymatic conditions.

Abstract

Solar-driven interfacial evaporation has emerged as a promising solution to global freshwater scarcity by harnessing renewable solar energy with minimal carbon emissions. Nevertheless, the low solar-driven water evaporation rate, salt accumulation, and the nonrecyclability of evaporators have limited the practical large-scale application of solar-driven seawater desalination. Thus, developing a highly efficient, self-cleaning, and recyclable solar-driven evaporation system is critical to addressing the global freshwater shortage. In this article, the recyclable biobased polydopamine (PDA)/polyurethane (PU) foam was synthesized with a great photothermal conversion effect and self-cleaning performance. PDA can provide superior photothermal conversion properties and hydrophilicity for pure PU foam, enabling its application in solar interface evaporation. The temperature of the PDA/PU composite foam can reach 90.0 °C under laser irradiation, and 68.7 °C under simulated sunlight at the intensity of 1 kW/m2. The solar-driven water evaporation rate of the PDA/PU foam was 1.39 kg m-2 h-1 under simulated sunlight (1 kW/m2) and also presented excellent continuous stability in a 12 h cyclic experiment. The water evaporation rate of PDA/PU foam in natural seawater is 1.34 kg m-2 h-1, demonstrating stable water evaporation and a self-cleaning performance in saline water. Further, the PDA/PU foam can degrade within 72 h in the presence of enzymes illustrating its good recyclability. On the whole, the as-prepared biobased PDA/PU foam exhibits great potential in large-scale solar-driven water evaporation system contributing to its high-efficient photothermal conversion effect, good recyclability, and self-cleaning performance.

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Cite This Study

Zong et al. (2026) studied this question.

synapsesocial.com/papers/6980fc37c1c9540dea80dfb1https://doi.org/10.1021/acsami.5c22963
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