Wet-chemical processing of transparent and antiglare conducting ITO coating on plastic substrates

被引:51
|
作者
Aegerter, MA [1 ]
Al-Dahoudi, N [1 ]
机构
[1] Inst Neue Mat gGmbH, D-66123 Saarbrucken, Germany
关键词
sol-gel; transparent conducting coatings; antiglare coatings; ITO; low temperature processing; nanoparticles; plastic substrates;
D O I
10.1023/A:1022636112130
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The paper reviews a low temperature sol-gel processing of transparent and antiglare conducting Sn doped indium oxide (ITO) coatings. The approach uses already crystalline nanoparticles which can be fully redispersed in an ethanolic sol containing a polymerisable organic binder. Thick single layers up to 600 nm can be deposited by spin and dip coating techniques followed either by a low temperature (<130 degrees C) heat treatment or by a UV light irradiation. Stable resistivity down to 9.5 x 10(-2) Omega cm (sheet resistance of 1.7 k Omega(square) for a 560 nm thick layer) have been obtained, together with high visible transparency (T approximate to 87%), good adhesion (DIN 58196-K2, and 53151) and abrasion resistance (DIN 58-196 G10 and H25) and 1 H hardness. Irradiation through a mask allows to easily pattern the coatings. Antiglare-conducting coatings with adjustable gloss (60 to 80 GU) and maintaining a good optical resolution (>8 lines/nm) were obtained by a conventional spraying technique. These techniques have been successfully applied to several plastic substrates such as polycarbonate (PC), polymethylmetacrylate (PMMA), polyimide, polyethylene (PE) as well as glasses.
引用
收藏
页码:81 / 89
页数:9
相关论文
共 50 条
  • [41] Electronic interface properties of silicon substrates after ozone based wet-chemical oxidation studied by SPV measurements
    Angermann, Heike
    Wolke, Klaus
    Gottschalk, Christiane
    Moldovan, Ana
    Roczen, Maurizio
    Fittkau, Jens
    Zimmer, Martin
    Rentsch, Jochen
    APPLIED SURFACE SCIENCE, 2012, 258 (21) : 8387 - 8396
  • [42] A wet chemical preparation of transparent conducting thin films of Ga-doped ZnO nanoparticles
    AlKahlout, Amal
    JOURNAL OF SOL-GEL SCIENCE AND TECHNOLOGY, 2013, 67 (02) : 331 - 338
  • [43] A wet chemical preparation of transparent conducting thin films of Al-doped ZnO nanoparticles
    Tarasov, Konstantin
    Raccurt, Olivier
    JOURNAL OF NANOPARTICLE RESEARCH, 2011, 13 (12) : 6717 - 6724
  • [44] A wet chemical preparation of transparent conducting thin films of Ga-doped ZnO nanoparticles
    Amal AlKahlout
    Journal of Sol-Gel Science and Technology, 2013, 67 : 331 - 338
  • [45] A wet chemical preparation of transparent conducting thin films of Al-doped ZnO nanoparticles
    Konstantin Tarasov
    Olivier Raccurt
    Journal of Nanoparticle Research, 2011, 13 : 6717 - 6724
  • [46] Transparent conducting, anti-static and anti-static-anti-glare coatings on plastic substrates
    Al-Dahoudi, N
    Bisht, H
    Göbbert, C
    Krajewski, T
    Aegerter, MA
    THIN SOLID FILMS, 2001, 392 (02) : 299 - 304
  • [47] Study on the Wet Processable Antimony Tin Oxide (Transparent Conducting Oxide, TCO) using Anode for PLED Device Instead of ITO
    Song, Insung
    Ma, Dongjoon
    Heo, Soowon
    Moon, Dookyung
    2009 SID INTERNATIONAL SYMPOSIUM DIGEST OF TECHNICAL PAPERS, VOL XL, BOOKS I - III, 2009, : 1306 - +
  • [48] Wet chemical route to transparent BiFeO3 films on SiO2 substrates
    Das, Soumen
    Basu, Soumen
    Mitra, Subarna
    Chakravorty, Dipankar
    Mondal, Bhola Nath
    THIN SOLID FILMS, 2010, 518 (15) : 4071 - 4075
  • [49] n- and p-type doping of 4H-SiC by wet-chemical laser processing
    Nishi, K.
    Ikeda, A.
    Marui, D.
    Ikenoue, H.
    Asano, T.
    SILICON CARBIDE AND RELATED MATERIALS 2013, PTS 1 AND 2, 2014, 778-780 : 645 - 648
  • [50] Morphological and Electrochemical Properties of Bilayered Copper Oxide Nanostructures Directly Grown on Transparent Conductive Oxides by a Simple Wet-Chemical Process
    Kim, Kyung Ho
    Kawai, Hiroki
    Abe, Yoshio
    Kawamura, Midori
    Kiba, Takayuki
    JOURNAL OF ELECTRONIC MATERIALS, 2018, 47 (12) : 7296 - 7300