Key Laboratory of Organic Optoelectronics and Molecular Engineering of the Ministry of Education, Department of Chemistry, ‡Center for Nano and Micro Mechanics, §Department of Engineering Mechanics, and ∥Department of Mechanical Engineering, Tsinghua University , Beijing 100084, PR China.
ACS Appl Mater Interfaces. 2017 Aug 30;9(34):28596-28603. doi: 10.1021/acsami.7b08619. Epub 2017 Aug 16.
The unique structure of a vertically aligned carbon nanotube (VACNT) array makes it behave most similarly to a blackbody. It is reported that the optical absorptivity of an extremely black VACNT array is about 0.98-0.99 over a large spectral range of 200 nm-200 μm, inspiring us to explore the performance of VACNT arrays in solar energy harvesting. In this work, we report the highly efficient steam generation simply by laminating a layer of VACNT array on the surface of water to harvest solar energy. It is found that under solar illumination the temperature of upper water can significantly increase with obvious water steam generated, indicating the efficient solar energy harvesting and local temperature rise by the thin layer of VACNTs. We found that the evaporation rate of water assisted by VACNT arrays is 10 times that of bare water, which is the highest ratio for solar-thermal-steam generation ever reported. Remarkably, the solar thermal conversion efficiency reached 90%. The excellent performance could be ascribed to the strong optical absorption and local temperature rise induced by the VACNT layer, as well as the ultrafast water transport through the VACNT layer due to the frictionless wall of CNTs. Based on the above, we further demonstrated the application of VACNT arrays in solar-driven desalination.
垂直排列碳纳米管(VACNT)阵列的独特结构使其行为最类似于黑体。据报道,在 200nm-200μm 的大光谱范围内,极其黑的 VACNT 阵列的光吸收率约为 0.98-0.99,这激发我们探索 VACNT 阵列在太阳能收集方面的性能。在这项工作中,我们报告了一种通过在水面上分层一层 VACNT 阵列来高效地产生蒸汽,从而收集太阳能。结果发现,在太阳光照下,上层水的温度可以显著升高,并且明显有蒸汽生成,这表明薄层 VACNTs 可以高效地收集太阳能并局部升温。我们发现,VACNT 阵列辅助的水蒸发速率是裸水的 10 倍,这是迄今为止报道的太阳能-热-蒸汽产生的最高比例。值得注意的是,太阳能热转换效率达到 90%。优异的性能可归因于 VACNT 层引起的强光学吸收和局部升温,以及由于 CNT 的无摩擦壁而引起的超快水传输。在此基础上,我们进一步展示了 VACNT 阵列在太阳能驱动的脱盐中的应用。