材料科学
纳米孔
碳纳米管
化学工程
纳米技术
气凝胶
碳纤维
微型多孔材料
海水淡化
光热治疗
能量转换效率
碳化
复合材料
光电子学
膜
扫描电子显微镜
生物
复合数
工程类
遗传学
作者
Peng Mu,Zheng Zhang,Wei Bai,Jingxian He,Hanxue Sun,Zhaoqi Zhu,Weidong Liang,An Li
标识
DOI:10.1002/aenm.201802158
摘要
Abstract Solar steam generation has been proven to be one of the most efficient approaches for harvesting solar energy for diverse applications such as distillation, desalination, and production of freshwater. Here, the synthesis of monolithic carbon aerogels by facile carbonization of conjugated microporous polymer nanotubes as efficient solar steam generators is reported. The monolithic carbon‐aerogel networks consist of randomly aggregated hollow‐carbon‐nanotubes (HCNTs) with 100–250 nm in diameter and a length of up to several micrometers to form a hierarchically nanoporous network structure. Treatment of the HCNTs aerogels with an ammonium peroxydisulfate/sulfuric acid solution endows their superhydrophilic wettability which is beneficial for rapid transportation of water molecules. In combination with their abundant porosity (92%) with open channel structure, low apparent density (57 mg cm −3 ), high specific surface area (826 m 2 g −1 ), low thermal conductivity (0.192 W m −1 K −1 ), and broad light absorption (99%), an exceptionally high conversion efficiency of 86.8% is achieved under 1 sun irradiation, showing great potential as an efficient photothermal material for solar steam generation. The findings may provide a new opportunity for tailored design and creation of new carbon‐aerogels‐based photothermal materials with adjustable structure, tunable porosity, simple fabrication process, and high solar energy conversion efficiency for solar steam generation.
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