Airflow Enhanced Solar Evaporation Based on Janus Graphene Membranes with Stable Interfacial Floatability

材料科学 蒸发 杰纳斯 石墨烯 光热治疗 微尺度化学 润湿 化学工程 气流 莲花效应 毛细管作用 纳米技术 复合材料 化学 原材料 数学教育 有机化学 工程类 物理 热力学 机械工程 生物化学 数学
作者
Dongdong Han,Zhao-Di Chen,Jichao Li,Jiang‐Wei Mao,Zhi-Zhen Jiao,Wei Wang,Wei Zhang,Yong‐Lai Zhang,Hong‐Bo Sun
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:12 (22): 25435-25443 被引量:91
标识
DOI:10.1021/acsami.0c05401
摘要

Solar interfacial evaporation has been recognized as a versatile energy conversion protocol for cutting-edge applications such as water treatment and power generation (e.g., hydro voltaic effect). Recently, to enhance water evaporation rates, water temperature and evaporation area have been considered as essential ingredients, and thus photothermal materials and three-dimensional hierarchical structures have been developed to promote light-to-heat conversion efficiency and enhance interfacial evaporation. However, less attention has been paid to the airflow effect, because the interfacial floatability of photothermal membranes should be considered under air blast. Here, inspired from the stable interfacial floatability of lotus leaves, we report the airflow enhanced solar interfacial evaporation approach using a graphene-based Janus membrane. Laser-induced graphene (LIG) film was treated unilaterally by O2 plasma, forming a LIG/oxidized LIG (LIG-O) Janus membrane with distinct wettability on two sides. Higher water evaporation rate of 1.512 kg m–2 h–1 is achieved. The high solar interfacial evaporation performance can be attributed to the two advantages: (i) the combination of microscale capillary water transporting and nanoscale light trapping; (ii) hydrophobic/hydrophilic Janus membrane for stable interfacial floatability under airflow. Our approach is feasible for developing high-performance solar interfacial evaporation devices for practical clean energy utilization.
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