Author
University of Qom, College of Engineering
,
Document Type : Research Article
10.63463/kjes1213
Abstract
The solar-thermal system used is highly efficient, and the desalination material is porous graphitic foams. This design uses the excellent photothermal properties and interconnected pore structure of graphitic foams to help interfacial evaporation while reducing heat loss to bulk water. Capillarity provides an ample supply of saline water to the evaporation surface at all times, and a thin water layer forms in the process, which then vaporizes. A study that combines theory and experiment was carried out to know how porosity, surface wetting, and thermal conductivity affect evaporation rate and solar-to-vapour conversion efficiency. Results indicate that the optimised foam structure solar still, which achieved over 70% one-sun solar-to-vapour efficiency, surpasses conventional flat solar stills. The system has excellent salt rejection performance and is thermally stable over long-term operation. This solution can produce fresh water on a large scale, at low cost, and sustainably in dry areas like Iraq, which enjoys abundant solar energy but has critical, scarce water resources.
- A. Zaed, K. H. Tan, R. Saidur, and A. K. Pandey, “Navigating solar-thermal desalination: A comprehensive review of materials selection criteria,” Sustainable Materials and Technologies, vol. 34, 2025.
- Yan, “A wall-like solar-driven interfacial evaporator fabricated via carbonised loofah for efficient desalination,” Desalination, vol. 565, 2025.
- Wu et al., “Highly efficient solar desalination using a composite foam absorber with enhanced photothermal performance,” Nat. Commun., vol. 10, no. 1208, 2019.
- Wang et al., “Capillary-driven solar-thermal water desalination using a porous selective absorber,” Solar Energy, vol. 204, pp. 478–487, 2020.
- G. Jang et al., “Efficient solar-thermal distillation desalination device by graphene-based porous foam,” Global Challenges, vol. 3, no. 5, 2019.
- –Q. Guo et al., “Sustainable biomass-derived photothermal materials for solar-driven seawater desalination and wastewater treatment,” Sustainability, vol. 17, no. 18, 2025.
- Yang, “Interfacial solar evaporation transforms brine mineral recovery,” Environmental Science & Technology, 2025.
- Chen et al., “High-performance photothermal materials for water evaporation in solar desalination systems,” Nano Energy, vol. 68, 2020.
- Zhang et al., “Multi-layered solar-thermal desalination using a photothermal porous material,” Nat. Sustain., vol. 3, pp. 1–7, 2020.
[10] J. Ren, “Hydrodynamic solar-driven interfacial evaporation — Gone with the flow,” Water Research, vol. 266, 2024.
- Yan, “A wall-like solar-driven interfacial evaporator fabricated via carbonized loofah for efficient desalination,” Desalination, 2025.
- -Q. Guo, J.-B. Wu, M.-X. Guo, H.-L. Fan, F.-H. Li, “Sustainable biomass-derived photothermal material for solar-driven seawater desalination and wastewater treatment,” Sustainability, vol. 17, no. 18, 2025.
- A. Zaed, K. H. Tan, R. Saidur, A. K. Pandey, “Navigating solar thermal desalination: A comprehensive review of materials selection criteria,” Sustainable Materials and Technologies, 2025.
- Ren, “Hydrodynamic solar-driven interfacial evaporation — Gone with the flow,” Water Research, 2024, vol. 266, art. no. 122432, DOI: 10.1016/j.watres.2024.122432.
- Yang, “Interfacial solar evaporation transforms brine mineral recovery,” Environmental Science & Technology, 2025.
- Wu, G. Chen, K. Yang, “Porous photothermal materials for scalable solar desalination,” Energy & Environmental Science, 2025, Advance Article.
- Zhang, Y. Liu, C. Chen, “Interfacial solar evaporation: Materials design and desalination performance,” Renewable and Sustainable Energy Reviews, 2023, vol. 173, art. no. 113030.
- Li, J. Wang, K. Zhu, “Capillary-enhanced carbon-based photothermal foams for solar desalination,” Nano Energy, 2024, vol. 114, art. no. 108658.
- Ren, F. Zhao, Z. Guo, “Salt-resistant interfacial solar evaporation via hydrodynamic regulation,” Water Research, 2024, vol. 266, art. no. 122432.
- Hassan, H. M. Abdeldayem, A. H. Elsheikh, “Energy–exergy–economic analysis of interfacial desalination systems,” Desalination, 2023, vol. 558, art. no. 116603.