Improvement of Transmittance by Fabricating Broadband Subwavelength Anti-Reflection Structures for Polycarbonate

被引:6
|
作者
Jang, H. S. [2 ]
Kim, J. H. [2 ]
Kim, K. S. [3 ,4 ]
Jung, G. Y. [3 ,4 ]
Lee, J. J. [1 ]
Kim, G. H. [1 ]
机构
[1] Korea Inst Machinery & Mat, Nanomechan Syst Res Div, Taejon 305343, South Korea
[2] Daegu Gyeongbuk Inst Sci & Technol, Div Nano & Bio Technol, Taegu 704230, South Korea
[3] Gwangju Inst Sci & Technol, Dept Mat Sci & Engn, Kwangju 500712, South Korea
[4] Gwangju Inst Sci & Technol, Program Integrated Mol Syst, Kwangju 500712, South Korea
关键词
Subwavelength Anti-Reflection; Transmittance; Polycarbonate; Thermal Nano-Imprinting Lithography; Laser Interference Lithography; HOT-WATER TREATMENT; THIN-FILMS; GRATINGS; SURFACES; GLASS;
D O I
10.1166/jnn.2011.3280
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We report on how to increase transmittance of a 0.2 mm thick polycarbonate (PC) film by periodic subwavelength anti-reflection structures in the visible spectral range. Subwavelength anti-reflection structures like moth-eyes are fabricated into the polycarbonate substrate itself by thermal nano-imprinting lithography (TH-NIL), which uses silicon stamps that have periodic structures such as gratings (lines and spaces) and pillared dots, and are fabricated by laser interference lithography (LIL) and transformer coupled plasma etching. To increase transmittance of a polycarbonate film, we control the periods and shapes of patterns, the number of patterned surfaces, and the overlapping direction of patterns that are fabricated into its surfaces. As a result of this, we show that average transmittance improves as the pattern period gets shorter and as both surfaces of the film are patterned. We also show that the spectrum range gets larger as the pattern period gets shorter and is determined by the longer pattern period in the case of designing a film to have different pattern period on its surfaces. The maximum average transmittance of a polycarbonate film increases up to approximately 6% compared to a bare sample in the 470-800 nm spectral range.
引用
收藏
页码:291 / 295
页数:5
相关论文
共 50 条
  • [1] PDMS-based subwavelength structures for broadband and wide-angle anti-reflection
    Yin, Yunzhen
    Bu, Yanyan
    Wang, Xiangfu
    PHYSICA B-CONDENSED MATTER, 2020, 580
  • [2] Anti-reflection Characteristics of Laser Drilling Subwavelength Tapered Structures at Terahertz Frequencies
    Horita, Naoki
    Yu, Xi
    Takeuchi, Mahiro
    Ono, Shingo
    Bae, Jongsuck
    2018 43RD INTERNATIONAL CONFERENCE ON INFRARED, MILLIMETER, AND TERAHERTZ WAVES (IRMMW-THZ), 2018,
  • [3] Femtosecond Laser Processing and Evaluation of Broadband THz Anti-Reflection Structures
    Sakurai, Haruyuki
    Nemoto, Natsuki
    Konishi, Kuniaki
    Takaku, Ryota
    Sakurai, Yuki
    Katayama, Nobuhiko
    Matsumura, Tomotake
    Yumoto, Junji
    Kuwata-Gonokami, Makoto
    2019 44TH INTERNATIONAL CONFERENCE ON INFRARED, MILLIMETER, AND TERAHERTZ WAVES (IRMMW-THZ), 2019,
  • [4] Optical scattering measurements of random anti-reflection subwavelength surface structures on binary gratings
    Gadamsetti, Praneeth
    Kunala, Karteek
    Poutous, Menelaos K.
    OPTICAL COMPONENTS AND MATERIALS XVII, 2020, 11276
  • [5] Subwavelength nanostructures evolving from hemispherical to spherical shapes for broadband anti-reflection in organic solar cells
    Lim, Donggyu
    Ju, Seongcheol
    Kim, Hyeonwoo
    Kang, Cheolhun
    Kim, Dohyun
    Kim, Jeonghyun
    Park, Hui Joon
    Lee, Kyu-Tae
    RENEWABLE ENERGY, 2025, 238
  • [6] Optical super-resolving phase filters with random anti-reflection subwavelength surface structures
    Gadamsetti, Praneeth
    Testorf, Markus E.
    Batoni, Paolo
    Poutous, Menelaos K.
    OPTICAL COMPONENTS AND MATERIALS XVIII, 2021, 11682
  • [7] Broadband Anti-Reflection coatings for Thin Film Photovoltaics
    Kaminski, P. M.
    Womack, G.
    Walls, J. M.
    2014 IEEE 40TH PHOTOVOLTAIC SPECIALIST CONFERENCE (PVSC), 2014, : 2778 - 2783
  • [8] Improvement of OLEDs Properties with Anti-reflection Coatings
    Liu, Chunling
    Wang, Dongmei
    Zhao, Lei
    Jiang, Wenlong
    Qin, Zhengkun
    Wang, Chunwu
    LED AND DISPLAY TECHNOLOGIES, 2010, 7852
  • [9] Preparation of broadband anti-reflection coating on the end of fiber
    Li, Z.-J. (lizaijin@126.com), 1600, Board of Optronics Lasers, No. 47 Yang-Liu-Qing Ying-Jian Road, Tian-Jin City, 300380, China (25):
  • [10] Design, fabrication and characterization of subwavelength periodic structures for semiconductor anti-reflection coating in the visible domain.
    Lalanne, P
    Morris, GM
    DEVELOPMENTS IN OPTICAL COMPONENT COATINGS, 1996, 2776 : 300 - 309