Application of ion conductors for microfabrication of solid surface

被引:0
|
作者
Kamada, Kai [1 ]
机构
[1] Nagasaki Univ, Fac Engn, Dept Mat Sci & Engn, Nagasaki 8528521, Japan
关键词
Solid electrolyte; Microelectrode; Microcontact; Pinpoint doping; Electrochemical micromachining; HIGH-RESOLUTION DEPOSITION; ALKALI SILICATE GLASS; DOPING SOED METHOD; ELECTROCHEMICAL REACTION; GRAIN-BOUNDARIES; SILVER; METAL; MICROELECTRODES; CONDUCTIVITY; IMPEDANCE;
D O I
10.2109/jcersj2.118.263
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 present paper describes novel microfabrication techniques which utilize an ion migration at the microcontact between ion conductor and target solid. Two different methods have been recently proposed by our group. One is a solid state electrochemical route for pinpoint doping using an ion conductor. In this approach, an electric field is applied to the solid solid in between the cation conductor and target solid, inducing the injection of cations into the target. A significant advantage of this technique is that it enables pinpoint doping into desired locations within a solid target using the ion conductor having an extremely small contact area. On the other hand. we have also in an electrochemical microstructuring (i.e., micromachining) of metal surface through an anodic reaction of metal substrate at to the needle-like ion conductor. The metal substrate is electrochemically oxidized, and then dissolves as Mn+ into the ion conductor placed at the cathodic side. As a result of the continuous application of electric field, the metal surface is drilled according to the apex form of the ion conductor employed. This paper reveals the characteristics (merits and demerits) of the present techniques vis-a-vis conventional techniques for doping or micromachining. (C) 2010 The Ceramic Society of Japan All rights reserved
引用
收藏
页码:263 / 268
页数:6
相关论文
共 50 条
  • [41] MICROFABRICATION WITH ION-BEAMS
    MURAY, AJ
    MURAY, JJ
    VACUUM, 1985, 35 (10-1) : 467 - 477
  • [42] MICROCONTACT PRINTING OF OCTADECYLSILOXANE ON THE SURFACE OF SILICON DIOXIDE AND ITS APPLICATION IN MICROFABRICATION
    XIA, YN
    MRKSICH, M
    KIM, E
    WHITESIDES, GM
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1995, 117 (37) : 9576 - 9577
  • [43] ION-BEAM MICROFABRICATION
    GAMO, K
    VACUUM, 1993, 44 (11-12) : 1089 - 1094
  • [44] Oxygen Surface Exchange at Grain Boundaries of Oxide Ion Conductors
    Lee, Wonyoung
    Jung, Hee Joon
    Lee, Min Hwan
    Kim, Young-Beom
    Park, Joong Sun
    Sinclair, Robert
    Prinz, Fritz B.
    ADVANCED FUNCTIONAL MATERIALS, 2012, 22 (05) : 965 - 971
  • [45] ISOLATING SURFACE LAYERS ON METALLIC CONDUCTORS PRODUCED BY ION BOMBARDMENT
    BALARIN, M
    OTTO, G
    STORBECK, I
    SCHENK, M
    WAGNER, H
    THIN SOLID FILMS, 1969, 4 (04) : 255 - &
  • [46] Solid state lithium ion conductors: Design considerations by thermodynamic approach
    V. Thangadurai
    W. Weppner
    Ionics, 2002, 8 : 281 - 292
  • [47] ELECTRICAL DOUBLE-LAYER IN SOLID ELECTROLYTES SILVER ION CONDUCTORS
    REMEZ, ID
    CHEBOTIN, VN
    ELECTROCHIMICA ACTA, 1984, 29 (10) : 1389 - 1397
  • [48] Zirconia based oxide ion conductors for solid oxide fuel cells
    O. Yamamoto
    Y. Arachi
    H. Sakai
    Y. Takeda
    N. Imanishi
    Y. Mizutani
    M. Kawai
    Y. Nakamura
    Ionics, 1998, 4 : 403 - 408
  • [49] NEW FAST SOLID LITHIUM ION CONDUCTORS AT LOW AND INTERMEDIATE TEMPERATURES
    SCHOCH, B
    HARTMANN, E
    WEPPNER, W
    SOLID STATE IONICS, 1986, 18-9 (pt 1) : 529 - 533
  • [50] Solid-state LiNMR with applications to the translational dynamics in ion conductors
    Boehmer, R.
    Jeffrey, K. R.
    Vogel, M.
    PROGRESS IN NUCLEAR MAGNETIC RESONANCE SPECTROSCOPY, 2007, 50 (2-3) : 87 - 174