LCD glass cleaning by atmospheric pressure glow discharge plasma

被引:4
|
作者
Cho, JH
Kim, JW
Kim, KS
Lee, WY
Kim, SH
Choi, WY
机构
[1] Changjo Engn Co Ltd, Hwaseong, South Korea
[2] Korea Univ Tech & Educ, Cheonan, South Korea
[3] Kangnung Natl Univ, Kangnung, South Korea
来源
关键词
LCD; ITO; atmospheric pressure; glow plasma; cleaning;
D O I
10.4028/www.scientific.net/KEM.297-300.2351
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
We report on a novel method for the surface modification of indium tin oxide (ITO) in LCD glass by direct exposure to a dielectric barrier discharge (DBD) at atmospheric pressure and room temperature. To remove the organic contaminants from the surfaces of ITO film in LCD glass, the atmospheric pressure RF glow discharge plasma was used. Argon (Ar) and oxygen (O-2) were used as the carrier gas and reactive gas, respectively. The addition of O-2 gas to Ar decreased the contact angle of water and increased the surface cleaning rate due to the increase of oxygen radicals in the plasma. The chemical characteristics of ITO surface after the plama treatment were investigated using X-ray photoelectron spectroscopy (XPS), and new carboxyl group bond was produced. The contact angle of 64 degrees before the plasma treatment was decreased to 7 degrees in the processing condition with oxygen flow rate of 50 sccm, treatment speed of 100mm/sec, and input power of 300W. These hydrophilic effect will be very useful in the manufacturing processes of LCD glass.
引用
收藏
页码:2351 / 2355
页数:5
相关论文
共 50 条
  • [31] Generation of uniform atmospheric pressure argon glow plasma by dielectric barrier discharge
    RAJU BHAI TYATA
    DEEPAK PRASAD SUBEDI
    RAJENDRA SHRESTHA
    CHIOW SAN WONG
    [J]. Pramana, 2013, 80 : 507 - 517
  • [32] Synthesis of Iron Oxyhydroxide Nanostructures in Glow-Discharge Plasma at Atmospheric Pressure
    E. A. Nevar
    M. I. Nedelko
    A. O. Radomtseu
    E. V. Beletskii
    N. N. Tarasenka
    N. V. Tarasenko
    [J]. Journal of Applied Spectroscopy, 2023, 90 : 599 - 606
  • [33] Metal-containing plasma source based on atmospheric pressure glow discharge
    Savkin, K.P.
    Sorokin, D.A.
    Beloplotov, D.V.
    Shandrikov, M.V.
    Kazakov, A.V.
    [J]. Applied Physics, 2022, (06): : 12 - 17
  • [34] Metal-Containing Plasma Source Based on Atmospheric Pressure Glow Discharge
    Savkin, K. P.
    Sorokin, D. A.
    Beloplotov, D. V.
    Shandrikov, M. V.
    Kazakov, A. V.
    [J]. PLASMA PHYSICS REPORTS, 2023, 49 (06) : 821 - 824
  • [35] An Atmospheric-Pressure Glow-Discharge Plasma Jet and Its Application
    Li, Xiang
    Tao, Xumei
    Yin, Yongxiang
    [J]. IEEE TRANSACTIONS ON PLASMA SCIENCE, 2009, 37 (06) : 759 - 763
  • [36] Synthesis of Iron Oxyhydroxide Nanostructures in Glow-Discharge Plasma at Atmospheric Pressure
    Nevar, E. A.
    Nedelko, M. I.
    Radomtseu, A. O.
    Beletskii, E. V.
    Tarasenka, N. N.
    Tarasenko, N. V.
    [J]. JOURNAL OF APPLIED SPECTROSCOPY, 2023, 90 (03) : 599 - 606
  • [37] Generation of uniform atmospheric pressure argon glow plasma by dielectric barrier discharge
    Tyata, Raju Bhai
    Subedi, Deepak Prasad
    Shrestha, Rajendra
    Wong, Chiow San
    [J]. PRAMANA-JOURNAL OF PHYSICS, 2013, 80 (03): : 507 - 517
  • [38] Study on formation mechanism of atmospheric pressure glow discharge air plasma jet
    Liu, Wenzheng
    Li, Zhiyi
    Zhao, Luxiang
    Zheng, Qingtian
    Ma, Chuanlong
    [J]. PHYSICS OF PLASMAS, 2018, 25 (08)
  • [39] Nanosecond-pulsed atmospheric pressure glow discharge plasma and its applications
    Wan, Jun
    Jia, Xianghong
    Song, Mingwei
    Wang, Shouguo
    [J]. Qiangjiguang Yu Lizishu/High Power Laser and Particle Beams, 2010, 22 (10): : 2299 - 2302
  • [40] Metal-Containing Plasma Source Based on Atmospheric Pressure Glow Discharge
    K. P. Savkin
    D. A. Sorokin
    D. V. Beloplotov
    M. V. Shandrikov
    A. V. Kazakov
    [J]. Plasma Physics Reports, 2023, 49 : 821 - 824