Transparent electrode, method for manufacturing same, and organic electroluminescent element
A transparent electrode includes: a substrate; and a conductive metal layer on the substrate. The conductive metal layer has a thin metal wire and a plating layer. The plating layer covers the thin metal wire. The transparent electrode further includes a transparent conductive layer on a surface of the substrate on a side on which the thin metal wire is formed. The transparent conductive layer covers the substrate and the conductive metal layer. The thin metal wire is formed using a metal nanoparticle ink or a metal complex ink.
1. A transparent electrode comprising:
a substrate; and
a conductive metal layer on the substrate, wherein
the conductive metal layer has a thin metal wire and a plating layer covering the thin metal wire,
the transparent electrode further comprises a transparent conductive layer on a surface of the substrate on a side on which the thin metal wire is formed, the transparent conductive layer covering the substrate and the conductive metal layer, and
the thin metal wire is formed using a metal nanoparticle ink or a metal complex ink, and the metal nanoparticle ink and the metal complex ink comprise at least one metal selected from the group consisting of gold, silver, copper, iron, cobalt, nickel, chromium, and alloys thereof.
2. The transparent electrode according to claim 1 , wherein the thin metal wire is formed by printing.
3. The transparent electrode according to claim 1 , wherein the thin metal wire is formed using an inkjet parallel line drawing method.
4. The transparent electrode according to claim 1 , wherein the transparent conductive layer contains a conductive polymer.
5. The transparent electrode according to claim 1 , wherein the transparent conductive layer contains a metal oxide.
6. An organic electroluminescent element comprising the transparent electrode according to claim 1 .
7. The transparent electrode according to claim 1 , wherein the metal nanoparticle ink and the metal complex ink comprise at least one metal selected from the group consisting of gold, silver, and copper.
8. The transparent electrode according to claim 1 , wherein the metal nanoparticle ink and the metal complex ink comprise silver.
9. The transparent electrode according to claim 1 , wherein the plating layer is formed by an electrolytic plating.
10. The transparent electrode according to claim 1 , wherein the metal nanoparticle ink contains metal nanoparticles, and the metal nanoparticles have an average particle size of 1 to 100 nm.
11. The transparent electrode according to claim 1 , wherein the metal nanoparticle ink contains metal nanoparticles, and the metal nanoparticles are observable as circles, ovals, or substantial circles or substantial ovals with an electron microscope.
12. A method for manufacturing a transparent electrode, comprising:
forming a thin metal wire on a substrate using a metal nanoparticle ink or a metal complex ink, wherein the metal nanoparticle ink and the metal complex ink comprise at least one metal selected from the group consisting of gold, silver, copper, iron, cobalt nickel, chromium, and alloys thereof;
plating the thin metal wire; and
forming a transparent conductive layer on the plated thin metal wire and a surface of the substrate on a side on which the thin metal wire is formed.
13. The transparent electrode according to claim 12 , wherein the metal nanoparticle ink and the metal complex ink comprise at least one metal selected from the group consisting of gold, silver, and copper.
14. The transparent electrode according to claim 12 , wherein the metal nanoparticle ink and the metal complex ink comprise silver.
15. The transparent electrode according to claim 12 , wherein the thin metal wire is plated by an electrolytic plating.
16. The transparent electrode according to claim 12 , wherein the metal nanoparticle ink contains metal nanoparticles, and the metal nanoparticles have an average particle size of 1 to 100 nm.
17. The transparent electrode according to claim 12 , wherein the metal nanoparticle ink contains metal nanoparticles, and the metal nanoparticles are observable as circles, ovals, or substantial circles or substantial ovals with an electron microscope.
18. The transparent electrode according to claim 12 , wherein the thin metal wire is heated before plating the thin metal wire.