EP1069460B1

Reflective lcd device and method of manufacture thereof

Abstract

This record has no abstract on file.

EP1069460B1, drawing sheet 1
Sheet 1 of 4

Term

Term ended

Expired 31 January 2020, 6.6 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

10 claims: 2 independent, 8 dependent

  1. 1
    A reflection-type liquid crystal display device, in which a first substrate (11) composed of an insulating transparent substrate and a second substrate (13) composed of an insulating substrate are opposed to each other with a liquid crystal layer (21) therebetween, transparent first electrodes (15) are provided on the liquid crystal layer side of the first substrate and transparent second electrodes (18) are provided on the liquid crystal layer side of the second substrate respectively, a color filter layer (33) is provided on the liquid crystal layer side of the first substrate (11) or the second substrate (13), a metal reflection film (19) is provided between the second substrate (13) and the color filter layer (33), a polarizing film (27) is disposed on the opposite side of the first substrate to the liquid crystal layer, and regions where the first electrodes (15) and the second electrodes (18) overlap in a plane view become pixels,    wherein said metal reflection film (19) is disposed with a gap provided between adjacent pixels,    wherein a conductive light absorbing layer (23) electrically connecting with said metal reflection film (19) is provided between said second substrate (13) and said metal reflection film (19);and     characterised in that a transparent anodic oxide film (25) is provided on the entire surface including side face of said metal reflection film (19).
  2. 5
    A fabricating method of a reflection-type liquid crystal display device, comprising the steps of:forming a large number of transparent first electrodes (15) in stripe forms on one face of a first substrate (11) composed of an insulating transparent substrate at predetermined spaced gaps;providing a conductive light absorbing layer (23) on the entire face of at least a display region of one face of a second substrate (13) composed of an insulating substrate;providing a metal reflection film layer (9) on the entire face on the top of the light absorbing layer (23);patterning the metal reflection film layer (9) to form a large number of metal reflection films (19) with gaps provided at least between adjacent pixels;performing anodic oxidation processing for a surface of each of the metal reflection films (19) using the conductive light absorbing layer (23) as a common electrode to form a transparent anodic oxide film (25), providing a color filter layer (33) respectively on each metal reflection film (19) on which the anodic oxide film (25) is formed;forming a transparent over coat film (35) on the color filter layer (33);forming a large number of transparent second electrodes (18) in stripe forms at positions each aligned with the metal reflection films on the over coat film (35) at predetermined spaced gaps;bonding the first substrate (11) and the second substrate (13) together with the first electrodes (15) and the second electrodes (18) being opposed to each other to intersect each other in a plane view within regions where each of the metal reflection films (19) is provided and a gap being provided therebetween, and sealing a liquid crystal layer (21) in the gap;and disposing a polarizing film (27) on a face on the opposite side of the first substrate (11) to the liquid crystal layer (21).