Acta Photonica Sinica, Volume. 50, Issue 9, 0904004(2021)

Preparation of 2D Composite Grating Antireflection Coatings and Its Application in Solar Cells

Bochuan ZHOU1, Chaolong FANG2, and Yaoju ZHANG3
Author Affiliations
  • 1School of Computer and Artificial Intelligence,Wenzhou University,Wenzhou, Zhejiang325035,China
  • 2Key Laboratory of Micro-Nano Optoelectronic Devices, School of Electrical and Electronic Engineering, Wenzhou University,Wenzhou, Zhejiang35035,China
  • 3School of Electrical and Electronic Engineering, Wenzhou University, Wenzhou, Zhejiang2505, China
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    References(27)

    [1] ZHONG Sihua, HUANG Zengguang, LIN Xingxing et al. High-efficiency nanostructured silicon solar cells on a large scale realized through the suppression of recombination channels[J]. Advanced Materials, 27, 555-561(2015).

    [2] LI Haofeng, JIA Rui, CHEN Chen et al. Influence of nanowires length on performance of crystalline silicon solar cell[J]. Applied Physics Letters, 98, 151116(2011).

    [3] LEE I J, PAIK U, PARK J G. Solar cell implemented with silicon nanowires on pyramid-texture silicon surface[J]. Solar Energy, 91, 256-262(2013).

    [4] TOOR F, BRANZ H M, PAGE M R et al. Multi-scale surface texture to improve blue response of nanoporous black silicon solar cells[J]. Applied Physics Letters, 99, 103501(2011).

    [5] MOORE D, RAHMAN M, DOWLING D P et al. Laser machined macro and micro structures on glass for enhanced light trapping in solar cells[J]. Applied Physics A, 110, 661-665(2013).

    [6] CHEN Tinggang, YU Peichen, TSAI Y L et al. Nano-patterned glass superstrates with different aspect ratios for enhanced light harvesting in a-Si: H thin film solar cells[J]. Optics Express, 20, A412-A417(2012).

    [7] FANG Chaolong, YANG Zhitong, ZHANG Jian et al. Biomimetic diodon-skin nanothorn polymer antireflection film for solar cell applications[J]. Solar Energy Materials & Solar Cells, 206, 110305(2020).

    [8] SCHMAGER R, FRITZ B, Ruben HÜNIG et al. Texture of the viola flower for light harvesting in photovoltaics[J]. ACS Photonics, 4, 2687-2692(2017).

    [9] DUDEM B, LEEM J W et al. CH3NH3PbI3 planar perovskite solar cells with antireflection and self-cleaning function layers[J]. Journal of Materials Chemistry A, 4, 7573-7579(2016).

    [10] JI S, SONG K, NGUYEN T B et al. Optimal moth eye nanostructure array on transparent glass towards broadband antireflection[J]. ACS Applied Materials & Interfaces, 5, 10731-10737(2013).

    [11] YE Xin, SHAO Ting, SUN Laixi et al. Plasma-induced, self-masking, one-step approach to an ultrabroadband antireflective and superhydrophilic subwavelength nanostructured fused silica surface[J]. ACS Applied Materials & Interfaces, 10, 13851-13859(2018).

    [12] FANG Chaolong, ZHENG Jun, ZHANG Yaoju et al. Antireflective paraboloidal microlens film for boosting power conversion efficiency of solar cells[J]. ACS Applied Materials & Interfaces, 10, 21950-21956(2018).

    [13] KIM D H, DUDEM B, JUNG J W et al. Boosting light harvesting in perovskite solar cells by biomimetic inverted hemispherical architectured polymer layer with high haze factor as an antireflective layer[J]. ACS Applied Materials & Interfaces, 10, 13113-13123(2018).

    [14] PENG Yujiang, HUANG Hanxiong, XIE Heng. Rapid fabrication of antireflective pyramid structure on polystyrene film used as protective layer of solar cell[J]. Solar Energy Materials & Solar Cells, 171, 98-105(2017).

    [15] HWANG I, CHOI D, LEE S et al. Enhancement of light absorption in photovoltaic devices using textured PDMS stickers[J]. ACS Applied Materials & Interfaces, 9, 21276-21282(2017).

    [16] KANG G et al. Bifunctional moth-eye nanopatterned dye-sensitized solar cells: light-harvesting and self-cleaning effects[J]. Advanced Energy Materials, 4, 1300632(2014).

    [17] LEEM J W, KIM S, LEE S H et al. Efficiency enhancement of organic solar cells using hydrophobic antireflective inverted moth-eye nanopatterned PDMS films[J]. Advanced Energy Materials, 4, 1301315(2014).

    [18] LI Yinyong, DAI Shuxi, JOHN J et al. Superhydrophobic surfaces from hierarchically structured wrinkled polymers[J]. ACS Applied Materials & Interfaces, 5, 11066-11073(2013).

    [19] KIM J B, KIM P, PéGARD N C et al. Wrinkles and deep folds as photonic structures in photovoltaics[J]. Nature Photonics, 6, 327-332(2012).

    [20] ZHANG Yaoju, ZHENG Jun, FANG Chaolong et al. Enhancement of silicon-wafer solar cell efficiency with low-cost wrinkle antireflection coating of polydimethylsiloxane[J]. Solar Energy Materials & Solar Cells, 181, 15-20(2018).

    [21] LIEN D H, CHANG H C et al. Hierarchical structures consisting of SiO2 nanorods and p-GaN microdomes for efficiently harvesting solar energy for InGaN quantum well photovoltaic cells[J]. Nanoscale, 4, 7346-7349(2012).

    [22] LEEM J W, SONG Y M, YU J S. Biomimetic artificial Si compound eye surface structures with broadband and wide-angle antireflection properties for Si-based optoelectronic applications[J]. Nanoscale, 5, 10455-10460(2013).

    [23] RAUT H K, GANESH V A, NAIR A S et al. Anti-reflective coatings: A critical, in-depth review[J]. Energy Environmental Science, 4, 3779-3804(2011).

    [24] PERL E E, MCMAHON W E, FARRELL R M et al. Surface structured optical coatings with near-perfect broadband and wide-angle antireflective properties[J]. Nano Letters, 14, 5960-5964(2014).

    [25] DAI Y, CHANG H C, LAI K et al. Subwavelength Si nanowire arrays for self-cleaning antireflection coatings[J]. Journal of Materials Chemistry, 20, 10924-10930(2010).

    [26] TSUI K H, LIN Q, CHOU H et al. Low-cost, flexible, and self-cleaning 3D nanocone anti-reflection films for high-efficiency photovoltaics[J]. Advanced Materials, 26, 2805-2811(2014).

    [27] PARK Y B et al. Self-cleaning effect of highly water-repellent microshell structures for solar cell applications[J]. Journal of Materials Chemistry, 21, 633-636(2011).

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    Bochuan ZHOU, Chaolong FANG, Yaoju ZHANG. Preparation of 2D Composite Grating Antireflection Coatings and Its Application in Solar Cells[J]. Acta Photonica Sinica, 2021, 50(9): 0904004

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    Paper Information

    Category: Detectors

    Received: Feb. 22, 2021

    Accepted: Jun. 3, 2021

    Published Online: Oct. 22, 2021

    The Author Email:

    DOI:10.3788/gzxb20215009.0904004

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