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All-Metal Broadband Optical Absorbers Based on Block Copolymer Nanolithography

机译:基于嵌段共聚物纳米光刻的全金属宽带光学吸收剂

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The growing interest in solar energy during recent years has spurred on the development of high-efficiency optical absorbers using emerging concepts in plasmonics and metamaterials. Most absorber designs require patterning on a subwavelength scale, making large-scale fabrication expensive or impractical. This study presents an all-metal metasurface with tightly packed, sub-80 nm nanodomes fabricated by template-stripping thin gold films from reusable silicon templates. Subwavelength patterning was achieved via molecular self-assembly of block copolymers, which enables large area, periodic patterning with nanometer precision. The proposed nanodome surface acts as an optical absorber capable of absorbing 97% of incident light in the visible range 320650 nm, and still more than 90% at high incidence angles. We demonstrate both experimentally and theoretically that the absorption behavior of the thin film can be controlled by changing the size of the nanodomes, namely, the gap between the structures. The enhanced absorption of light is attributed to localized particle plasmon and gap plasmon resonances. This research provides a straightforward and cost-effective strategy to design and fabricate thin, large-area, light-absorbing coatings that can be transferred onto nearly any rigid or flexible substrate. The all-metal metasurfaces are a promising candidate for plasmon-induced hot electron generation for efficient solar energy conversion in photovoltaic and photocatalytic devices.
机译:近年来太阳能的对太阳能越来越令人越来越令人兴趣,刺激了使用普拉斯科和超材料中的新兴概念的高效光学吸收剂的开发。大多数吸收器设计需要在亚波长刻度上进行图案化,使大规模的制造昂贵或不切实际。本研究介绍了一种全金属元表面,其具有紧密填充的亚80nm纳米米,由来自可重复使用的硅模板的模板剥离薄金膜制造。通过嵌段共聚物的分子自组装实现亚波长图案化,这使得具有大面积的具有纳米精度的周期性图案化。所提出的纳米物体表面用作光学吸收器,能够吸收320650nm的可见光范围内的97%的入射光,并且在高入射角下仍然超过90%。我们在实验和理论上证明了薄膜的吸收行为可以通过改变纳米粉末的尺寸来控制,即结构之间的间隙。增强的光吸收归因于局部颗粒等离子体和间隙等离子体共振。该研究提供了一种直接和成本效益的策略,可以设计和制造薄,大面积的光吸收涂层,该薄涂层可以转移到几乎任何刚性或柔性基板上。全金属元胶是等离子体诱导的热电子发电的有希望的候选者,用于光伏和光催化装置中有效的太阳能转换。

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