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用于高效光热转换的大规模菜花状分级铜纳米结构。

Large-scale cauliflower-shaped hierarchical copper nanostructures for efficient photothermal conversion.

机构信息

Laser Materials Processing Research Centre, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, PR China.

出版信息

Nanoscale. 2016 Aug 14;8(30):14617-24. doi: 10.1039/c6nr03662g. Epub 2016 Jul 19.

Abstract

Efficient solar energy harvesting and photothermal conversion have essential importance for many practical applications. Here, we present a laser-induced cauliflower-shaped hierarchical surface nanostructure on a copper surface, which exhibits extremely high omnidirectional absorption efficiency over a broad electromagnetic spectral range from the UV to the near-infrared region. The measured average hemispherical absorptance is as high as 98% within the wavelength range of 200-800 nm, and the angle dependent specular reflectance stays below 0.1% within the 0-60° incident angle. Such a structured copper surface can exhibit an apparent heating up effect under the sunlight illumination. In the experiment of evaporating water, the structured surface yields an overall photothermal conversion efficiency over 60% under an illuminating solar power density of ∼1 kW m(-2). The presented technology provides a cost-effective, reliable, and simple way for realizing broadband omnidirectional light absorptive metal surfaces for efficient solar energy harvesting and utilization, which is highly demanded in various light harvesting, anti-reflection, and photothermal conversion applications. Since the structure is directly formed by femtosecond laser writing, it is quite suitable for mass production and can be easily extended to a large surface area.

摘要

高效的太阳能收集和光热转换对于许多实际应用具有重要意义。在这里,我们在铜表面上展示了一种激光诱导的花椰菜状分层表面纳米结构,该结构在从紫外到近红外的宽电磁光谱范围内表现出极高的全向吸收效率。在 200-800nm 的波长范围内,测量得到的平均半球形吸收率高达 98%,在 0-60°入射角范围内的镜面反射率依赖角度,仍保持在 0.1%以下。在阳光照射下,这种结构化的铜表面可以表现出明显的加热效果。在蒸发水的实验中,在光照太阳能密度约为 1kW m(-2)的条件下,结构化表面的整体光热转换效率超过 60%。所提出的技术为实现高效太阳能收集和利用的宽带全向光吸收金属表面提供了一种具有成本效益、可靠且简单的方法,这在各种光收集、抗反射和光热转换应用中都有很高的需求。由于结构是通过飞秒激光写入直接形成的,因此非常适合大规模生产,并可以很容易地扩展到更大的表面积。

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