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Scalable and Highly Efficient Mesoporous Wood‐Based Solar Steam Generation Device: Localized Heat,Rapid Water Transport
Authors:Tian Li  He Liu  Xinpeng Zhao  Guang Chen  Jiaqi Dai  Glenn Pastel  Chao Jia  Chaoji Chen  Emily Hitz  Das Siddhartha  Ronggui Yang  Liangbing Hu
Affiliation:1. Department of Materials Science and Engineering, University of Maryland College Park, College Park, MD, USA;2. Department of Mechanical Engineering, University of Colorado, Boulder, CO, USA;3. Department of Mechanical Engineering, University of Maryland, College Park, MD, USA
Abstract:Solar steam generation is regarded as one of the most sustainable techniques for desalination and wastewater treatment. However, there has been a lack of scalable material systems with high efficiency under 1 Sun. A solar steam generation device is designed utilizing crossplane water transport in wood via nanoscale channels and the preferred thermal transport direction is decoupled to reduce the conductive heat loss. A high steam generation efficiency of 80% under 1 Sun and 89% under 10 Suns is achieved. Surprisingly, the crossplanes perpendicular to the mesoporous wood can provide rapid water transport via the pits and spirals. The cellulose nanofibers are circularly oriented around the pits and highly aligned along spirals to draw water across lumens. Meanwhile, the anisotropic thermal conduction of mesoporous wood is utilized, which can provide better insulation than widely used super‐thermal insulator Styrofoam (≈0.03 W m?1 K?1). The crossplane direction of wood exhibits a thermal conductivity of 0.11 W m?1 K?1. The anisotropic thermal conduction redirects the absorbed heat along the in‐plane direction while impeding the conductive heat loss to the water. The solar steam generation device is promising for cost‐effective and large‐scale application under ambient solar irradiance.
Keywords:biodegradable devices  high‐efficiency steam generation  mesoporous materials  microfluidics  solar steam
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