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用于高效太阳能蒸汽产生的氮掺杂超润湿性、隔热且弹性的石墨烯气凝胶

Nitrogen-Doped Unusually Superwetting, Thermally Insulating, and Elastic Graphene Aerogel for Efficient Solar Steam Generation.

作者信息

Deng Xin, Nie Qichun, Wu Yu, Fang Haisheng, Zhang Peixin, Xie Yangsu

机构信息

College of Chemistry and Environmental Engineering, Shenzhen University, Shenzhen, Guangdong 518055, P. R. China.

State Key Laboratory of Coal Combustion, School of Energy and Power Engineering, Huazhong University of Science and Technology, Wuhan, Hubei 430074, China.

出版信息

ACS Appl Mater Interfaces. 2020 Jun 10;12(23):26200-26212. doi: 10.1021/acsami.0c05666. Epub 2020 May 26.

Abstract

By removing the oxygen-containing functional groups, thermal treatment in inert gas has been widely reported to improve the hydrophobicity of carbon materials. However, this work reports a contrary phenomenon for the nitrogen-doped graphene aerogel (NGA). As the temperature of thermal treatment increases from 200 to 1000 °C, NGA becomes more and more hydrophilic and the superwetting property remains for weeks in air. To uncover this unusual phenomenon, the effect of nitrogen doping is studied through both experiment and MD simulations. The effects of air exposure and air humidity are further investigated in detail to illustrate the whole physical picture clearly. The superwetting behavior is attributed to the preferential adsorption of water molecules to the nitrogen-doped sites, which significantly inhibits airborne hydrocarbon adsorption. In combination with the excellent properties including mechanical elasticity, high light absorption, and good thermal insulation, an efficient photothermal and solar steam generation performance is demonstrated by using NGA-600 as the photothermal material, presenting a high energy conversion efficiency of 86.2% and good recycling stability.

摘要

通过去除含氧官能团,在惰性气体中进行热处理已被广泛报道可提高碳材料的疏水性。然而,这项工作报道了氮掺杂石墨烯气凝胶(NGA)的相反现象。随着热处理温度从200℃升高到1000℃,NGA变得越来越亲水,并且在空气中超润湿性可保持数周。为了揭示这一不寻常现象,通过实验和分子动力学模拟研究了氮掺杂的影响。进一步详细研究了空气暴露和空气湿度的影响,以清楚地说明整个物理过程。超润湿性行为归因于水分子优先吸附到氮掺杂位点,这显著抑制了空气中碳氢化合物的吸附。结合机械弹性、高光吸收和良好隔热等优异性能,以NGA - 600作为光热材料展示了高效的光热和太阳能蒸汽产生性能,呈现出86.2%的高能量转换效率和良好的循环稳定性。

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