Improved broadband and quasi-omnidirectional anti-reflection properties with biomimetic silicon nanostructures

被引:0
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作者
Yi-Fan Huang
Surojit Chattopadhyay
Yi-Jun Jen
Cheng-Yu Peng
Tze-An Liu
Yu-Kuei Hsu
Ci-Ling Pan
Hung-Chun Lo
Chih-Hsun Hsu
Yuan-Huei Chang
Chih-Shan Lee
Kuei-Hsien Chen
Li-Chyong Chen
机构
[1] National Taipei University of Technology,Department of Electro
[2] Institute of Atomic and Molecular Sciences,Optical Engineering
[3] Academia Sinica,Department of Electrical Engineering
[4] National Chung Hsing University,Department of Photonics and Institute of Electro
[5] Center for Measurement Standards,Optical Engineering
[6] Industrial Technology Research Institute,Department of Materials Science and Engineering
[7] National Chiao Tung University,undefined
[8] National Chiao Tung University,undefined
[9] Center for Condensed Matter Sciences,undefined
[10] National Taiwan University,undefined
[11] Department of Physics National Taiwan University,undefined
来源
Nature Nanotechnology | 2007年 / 2卷
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摘要
Nature routinely produces nanostructured surfaces with useful properties1,2,3,4, such as the self-cleaning lotus leaf5, the colour of the butterfly wing6, the photoreceptor in brittlestar7 and the anti-reflection observed in the moth eye8. Scientists and engineers have been able to mimic some of these natural structures in the laboratory and in real-world applications9,10,11,12. Here, we report a simple aperiodic array of silicon nanotips on a 6-inch wafer with a sub-wavelength structure that can suppress the reflection of light at a range of wavelengths from the ultraviolet, through the visible part of the spectrum, to the terahertz region. Reflection is suppressed for a wide range of angles of incidence and for both s- and p-polarized light. The antireflection properties of the silicon result from changes in the refractive index caused by variations in the height of the silicon nanotips, and can be simulated with models that have been used to explain the low reflection from moth eyes8,13,14. The improved anti-reflection properties of the surfaces could have applications in renewable energy and electro-optical devices for the military.
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页码:770 / 774
页数:4
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