Araştırma Makalesi

Broadband Low Reflection Surfaces With Silicon Nano-tube Square Arrays And Quantum Dot Layers

Sayı: 34 31 Mart 2022
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Broadband Low Reflection Surfaces With Silicon Nano-tube Square Arrays And Quantum Dot Layers

Öz

In this study, we take as a starting nanostructure which is already optimized in terms of the silicon nanopillar arrays’ structure pillar height, pillar diameter, and filling ratio such that the optical reflection from its surface is very low (weighted average reflection 3.75 percent). Full-field Finite Difference Time Domain method is used to simulate electric and magnetic fields and calculate the reflection from the modified nanostructured substrate surfaces in 400nm-1100nm spectral range. In this paper, we present the optimization of the structure in terms of the silicon nanotube structure cavity diameter, step coverage of the dielectric thin film. As a result, the weighted reflection is decreased to 3.35 percent. We also want to simulate the quantum dot solution layer deposited over the nanostructure. We modeled the quantum dots as Lorentz dielectric and decreased the optical reflection even lower level of 3.1 percent. Optimization recipe is clearly presented, and the developed method is not only useful for square arrays but also for regular arrays of nanopillars in general for photovoltaic devices.

Anahtar Kelimeler

Proje Numarası

219M280

Kaynakça

  1. B. S. Richards, S. F. Rowlands, C. B. Honsberg, and J. E. Cotter, “TiO2 DLAR coatings for planar silicon solar cells,” Progress in Photovoltaics 11, 27 2003.
  2. J. H. Selj, T. T. Mongstad, R. Sondena, and E. S. Marstein, “Reduction of optical losses in colored solar cells with multilayer antireflection coatings,” Solar Energy Materials and Solar Cells 95, 2576 2011.
  3. P. Campbell and M. A. Green,“Light Trapping Properties of Pyramidally Textured Surfaces,” Journal of Applied Physics 62, 243 1987.
  4. S. A. Boden and D. M. Bagnall, “Tunable reflection minima of nanostructured antireflective surfaces,” Applied Physics Letters 93 2008.
  5. S. A. Boden and D. M. Bagnall, “Optimization of moth-eye antireflection schemes for silicon solar cells,” Progress in Photovoltaics 18, 195 2010.
  6. S. Chattopadhyay, Y. F. Huang, Y. J. Jen, A. Ganguly, K. H. Chen, and L. C. Chen, “Anti-reflecting and photonic nanostructures,” Materials Science & Engineering R-Reports 69, 1 2010.
  7. K. Hadobas, S. Kirsch, A. Carl, M. Acet, and E. F. Wassermann, “Reflection properties of nanostructure-arrayed silicon surfaces ,” Nanotechnology 11, 161 2000.
  8. Y. F. Huang, S. Chattopadhyay, Y. J. Jen, C. Y. Peng, T. A. Liu, Y. K. Hsu, C. L. Pan, H. C. Lo, C. H. Hsu, Y. H. Chang, C. S. Lee, K. H. Chen, and L. C. Chen, “Improved broadband and quasi-omnidirectional anti-reflection properties with biomimetic silicon nanostructures,” Nature Nanotechnology 2, 770 2007.

Ayrıntılar

Birincil Dil

İngilizce

Konular

Mühendislik

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

31 Mart 2022

Gönderilme Tarihi

5 Mart 2022

Kabul Tarihi

15 Mart 2022

Yayımlandığı Sayı

Yıl 2022 Sayı: 34

Kaynak Göster

APA
Tut, T. (2022). Broadband Low Reflection Surfaces With Silicon Nano-tube Square Arrays And Quantum Dot Layers. Avrupa Bilim ve Teknoloji Dergisi, 34, 479-484. https://doi.org/10.31590/ejosat.1083320
AMA
1.Tut T. Broadband Low Reflection Surfaces With Silicon Nano-tube Square Arrays And Quantum Dot Layers. EJOSAT. 2022;(34):479-484. doi:10.31590/ejosat.1083320
Chicago
Tut, Turgut. 2022. “Broadband Low Reflection Surfaces With Silicon Nano-tube Square Arrays And Quantum Dot Layers”. Avrupa Bilim ve Teknoloji Dergisi, sy 34: 479-84. https://doi.org/10.31590/ejosat.1083320.
EndNote
Tut T (01 Mart 2022) Broadband Low Reflection Surfaces With Silicon Nano-tube Square Arrays And Quantum Dot Layers. Avrupa Bilim ve Teknoloji Dergisi 34 479–484.
IEEE
[1]T. Tut, “Broadband Low Reflection Surfaces With Silicon Nano-tube Square Arrays And Quantum Dot Layers”, EJOSAT, sy 34, ss. 479–484, Mar. 2022, doi: 10.31590/ejosat.1083320.
ISNAD
Tut, Turgut. “Broadband Low Reflection Surfaces With Silicon Nano-tube Square Arrays And Quantum Dot Layers”. Avrupa Bilim ve Teknoloji Dergisi. 34 (01 Mart 2022): 479-484. https://doi.org/10.31590/ejosat.1083320.
JAMA
1.Tut T. Broadband Low Reflection Surfaces With Silicon Nano-tube Square Arrays And Quantum Dot Layers. EJOSAT. 2022;:479–484.
MLA
Tut, Turgut. “Broadband Low Reflection Surfaces With Silicon Nano-tube Square Arrays And Quantum Dot Layers”. Avrupa Bilim ve Teknoloji Dergisi, sy 34, Mart 2022, ss. 479-84, doi:10.31590/ejosat.1083320.
Vancouver
1.Turgut Tut. Broadband Low Reflection Surfaces With Silicon Nano-tube Square Arrays And Quantum Dot Layers. EJOSAT. 01 Mart 2022;(34):479-84. doi:10.31590/ejosat.1083320