Claims
- 1. An anisotropic conductive material body, comprising:
an insulating medium; and a plurality of conductive members dispersed in the medium; wherein: at least a surface of each of the plurality of conductive members is conductive; and a force is applied to at least one of the plurality of conductive members so as to change the at least one conductive member, so that the conductive property of the anisotropic conductive material body provided by the at least one conductive member is changed to an insulating property.
- 2. An anisotropic conductive material body according to claim 1, wherein the medium is adhesive.
- 3. An anisotropic conductive material body according to claim 1, wherein the medium is formed of a synthetic resin.
- 4. An anisotropic conductive material body according to claim 1, wherein the plurality of conductive members are
a plurality of conductive particles.
- 5. An anisotropic conductive material body according to claim 1, wherein:
the plurality of conductive members each include a plurality of insulating particles and a conductive plating cover for covering the plurality of insulating particles; and the change in the at least one conductive member includes breakage of the conductive plating cover of the at least one conductive member.
- 6. An anisotropic conductive material body according to claim 5, wherein:
the plurality of conductive members area plurality of conductive particles; and the plurality of conductive particles each have a particle diameter of 10 to 20 μm inclusive, and the plurality of insulating particles each have a particle diameter of 2 to 5 μm inclusive.
- 7. An anisotropic conductive material body according to claim 1, wherein the change in the at least one conductive member includes division of the at least one conductive member.
- 8. An anisotropic conductive material body according to claim 1, further comprising a plurality of insulating particles dispersed in the medium.
- 9. An anisotropic conductive material body according to claim 8, wherein the plurality of insulating particles each have a particle diameter of 2 to 20 μm inclusive.
- 10. An anisotropic conductive material body according to claim 1, wherein the medium is film-like.
- 11. A display apparatus, comprising:
a display panel; a driving circuit for driving the display panel; a driving circuit connector provided on the driving circuit; a panel connector provided on the display panel; and an anisotropic conductive material body for electrically connecting the driving circuit connector and the panel connector to each other; wherein: the anisotropic conductive material body includes an insulating medium, and a plurality of conductive members dispersed in the medium; at least a surface of each of the plurality of conductive members is conductive; and a force is applied to at least one of the plurality of conductive members so as to change the at least one conductive member, so that the conductive property of the anisotropic conductive material body provided by the at least one conductive member is changed to an insulating property.
- 12. A display apparatus according to claim 11, wherein the anisotropic conductive material body is used for mounting the driving circuit on the display panel.
- 13. A display apparatus according to claim 11, wherein a gap between the driving circuit connector and the panel connector is larger than a gap between a portion of the driving circuit, which is not in correspondence with the driving circuit connector, and the panel connector.
- 14. A display apparatus according to claim 11, wherein:
the anisotropic conductive material body is provided between the driving circuit and the display panel and between the driving circuit connector and the panel connector; and a gap between the driving circuit connector and the panel connector is designed such that the conductive property provided by the conductive member existing in the gap is not changed to an insulating property; and a gap between the portion of the driving circuit, which is not in correspondence with the driving circuit connector, and the panel connector is designed such that the conductive property provided by the conductive member existing in the gap is changed to an insulating property.
- 15. A display apparatus according to claim 11, wherein the panel connector has a recessed portion facing the driving circuit connector.
- 16. A display apparatus according to claim 11, wherein:
the plurality of conductive members each includes a plurality of insulating particles and a conductive plating cover for covering the plurality of insulating particles; and the change in the at least one conductive member includes breakage of the conductive plating cover of the at least one conductive member.
- 17. A display apparatus according to claim 11, wherein the change in the at least one conductive member includes division of the at least one conductive member.
- 18. A method for producing a display apparatus including a display panel; a driving circuit for driving the display panel; a driving circuit connector provided on the driving circuit; a panel connector provided on the display panel; and an anisotropic conductive material body for electrically connecting the driving circuit connector and the panel connector to each other; the method comprising the steps of:
mounting the driving circuit on the display panel with an anisotropic conductive material body, the anisotropic conductive material body including an insulating medium and a plurality of conductive members dispersed in the medium,-at least a surface of each of the plurality of conductive members being conductive; and insulating a prescribed portion of the anisotropic conductive material body, in which a force is applied to at least one of the plurality of conductive members so as to change the at least one conductive member, so that the conductive property of the anisotropic Conductive material body provided by the at least one conductive member is changed to an insulating property.
- 19. A method according to claim 18, wherein:
the plurality of conductive members each include a plurality of insulating particles and a conductive plating cover for covering the plurality of insulating particles; and in the step of insulating the prescribed portion of the anisotropic conductive material body, the change in the at least one conductive member includes breakage of the conductive plating cover of the at least one conductive member.
- 20. A method according to claim 18, wherein in the step of insulating the prescribed portion of the anisotropic conductive material body, the change in the at least one conductive member includes division of the at least one conductive member.
- 21. A method according to claim 18, wherein:
the step of mounting the driving circuit on the display panel includes the step of locating the anisotropic conductive material body between the driving circuit and the display panel and between the driving circuit connector and the panel connector; and the step of insulating the prescribed portion of the anisotropic conductive material body includes the step of compressing the conductive member located between the panel connector and the portion of the driving circuit, which is not in correspondence with the driving circuit connector, without compressing the conductive member located between the driving circuit connector and the panel connector.
- 22. A method according to claim 18, wherein the panel connector has a recessed portion facing the driving circuit connector.
- 23. A method according to claim 18, wherein the step of insulating the prescribed portion of the anisotropic conductive material body includes the step of pressurizing the driving circuit with a prescribed pressure.
- 24. A conductive member, wherein at least a surface of the conductive member is conductive, and the conductive member is changed by a force applied thereto.
- 25. A conductive member according to claim 24, which comprises a plurality of insulating particles and a conductive plating cover for covering the plurality of insulating particles;
wherein the conductive plating cover is broken when a force is applied to the conductive member.
- 26. A conductive member according to claim 25, which is a conductive particle, wherein the conductive particle has a diameter of 10 to 20 μm inclusive, and the plurality of insulating particles each have a particle diameter of 2 to 5 μm.
- 27. A conductive member according to claim 24, which is divided by a force applied thereto.
Priority Claims (2)
Number |
Date |
Country |
Kind |
2003-161316 |
Jun 2003 |
JP |
|
2004-160269 |
May 2004 |
JP |
|
Parent Case Info
[0001] This non-provisional application claims priority under 35 U.S.C., §119(a), on Patent Applications Nos. 2003-161316 filed in Japan on Jun. 5, 2003 and 2004-160269 filed in Japan on May 28, 2004, the entire contents of which are hereby incorporated by reference.