PofoliaShared via Pofolia

Journal of Water Process Engineering· 2026Q1

A biomimetic leaf epidermis: Moldable knitted fabric based carbon fiber evaporator using weaving process for stable solar water desalination

Betti Ses Eka Polonia, Jamasri, Joko Waluyo, M.J. Mohammad Fikry et al.

Short summary

A biomimetic carbon fiber-tencel fabric evaporator, mimicking leaf epidermis structure, achieves a solar water desalination rate of 4.95 kg m -2 h -1 under 1 sun, significantly outperforming pure water evaporation (1.80 kg m -2 h -1).

AI-generated from the title and abstract; the full text is not read.

Key points

  • Developed a biomimetic carbon fiber-tencel fabric evaporator using a weaving process, mimicking leaf epidermis for directional water transport and light harvesting.
  • Carbon fibers act as photothermal absorbers, while tencel fibers provide capillary water transport (35 g/g uptake vs. 7 g/g for carbon fiber).
  • Optimized 4:1 twill weave structure achieved a solar evaporation rate of 4.95 kg m -2 h -1 under 1 sun, significantly higher than pure water (1.80 kg m -2 h -1).
  • The textile architecture alone governs heat and mass transfer, enabling stable operation through localized salt crystallization without surface blockage.

AI-generated from the title and abstract; the full text is not read.

Abstract

The growing global demand for freshwater has driven the development of solar interfacial evaporation as an energy-efficient desalination strategy. In this work, a biomimetic carbon fiber–tencel mixed fabric evaporator is developed by mimicking the leaf epidermis in terms of directional water transport and light harvesting using a conventional weaving process. Carbon fibers act as an efficient broadband photothermal layer, while hydrophilic tencel provides continuous capillary-driven water transport, forming a coating-free and structurally tunable system via weave architecture. By varying the weave architecture, the light absorption, moisture transport, and evaporation behavior can be directly controlled at the textile level. The performance is supported by multi-scale characterization. Scanning electron microscopy analysis shows aligned carbon filaments (∼7–10 μm) and porous tencel fibers (∼10–15 μm), enabling effective heat localization and water supply. Water uptake reaches ∼35 g/g for tencel compared to ∼7 g/g for carbon fiber, confirming strong functional synergy. Optical measurements (350–1100 nm) and thermal imaging further demonstrate enhanced absorption and higher surface temperatures with increasing weave float length. The results show that the optimized 4:1 twill structure achieves an evaporation rate of 4.95 kg m −2 h −1 under 1 sun (1 kW m −2 ), significantly higher than pure water (∼1.80 kg m −2 h −1 ), while maintaining stable operation through localized salt crystallization without surface blockage. These findings demonstrate that textile architecture alone can govern heat and mass transfer without additional chemical modification. This study introduces a scalable, coating-free, biomimetic textile evaporator, offering strong potential for desalination, wastewater treatment, and zero-liquid discharge systems, as well as broader applications in photothermal and energy–water integrated materials.

The authors' abstract, as published at the source. Journal of Water Process Engineering, 2026 · DOI ↗

TakeawaysIn the app
Ask the paperIn the app

The rest is in the Pofolia app

Takeaways and questions to the paper; new summaries every day for your field. Free.

Sign in on the web to open

Field: Renewable Energy, Sustainability and the Environment

Renewable Energy, Sustainability and the EnvironmentEnergy