Electrochromic device
The present application relates to an electrochromic device and a method for manufacturing the electrochromic device. The present application can provide an electrochromic device having increased productivity and improved electrochromic rate and durability, and a method for manufacturing the electrochromic device. The electrochromic device may be advantageously used in various devices such as smart windows, smart mirrors, displays, electronic papers and adaptive camouflage.
1. An electrochromic device sequentially comprising a first electrode layer, a composite electrochromic layer, an electrolyte layer, an ion storage layer and a second electrode layer, wherein said composite electrochromic layer comprises a laminate structure of a plurality of electrochromic layers, at least two electrochromic layers among said plurality of electrochromic layers have densities different from each other, and the electrochromic layer having a higher density among said at least two electrochromic layers having different densities is disposed closer to said first electrode layer than the electrochromic layer having a lower density,
wherein each of said two electrochromic layers comprises metal oxide and said two electrochromic layers have a density difference of 0.1 g/cm 3 or more, and
wherein said electrochromic layer having the higher density has a density of 5.0 g/cm 3 to 8.0 g/cm 3 .
2. The electrochromic device according to claim 1 , wherein said two electrochromic layers having different densities are driven adjacent to each other.
3. The electrochromic device according to claim 1 , wherein said two electrochromic layers having different densities are directly laminated to each other.
4. The electrochromic device according to claim 1 , wherein said electrochromic layer having the lower density has a density of 3.0 g/cm 3 to 7.0 g/cm 3 .
5. The electrochromic device according to claim 1 , wherein each of said two electrochromic layers having different densities has a thickness of 10 nm to 800 nm.
6. The electrochromic device according to claim 1 , wherein said electrochromic layer having the lower density is a porous film as compared to said electrochromic layer having the higher density.
7. The electrochromic device according to claim 1 , wherein each of said two electrochromic layers having different densities comprises at least one metal oxide of metal oxides of tungsten (W), titanium (Ti), vanadium (V), molybdenum (Mo), niobium (Nb), chromium (Cr), manganese (Mn), iron (Fe), nickel (Ni), cobalt (Co), iridium (Ir) and lithium nickel (LiNi).
8. The electrochromic device according to claim 1 , wherein each of said two electrochromic layers having different densities comprises the same kind of electrochromic material.
9. The electrochromic device according to claim 1 , wherein said ion storage layer comprises an oxidatively conductive material when the composite electrochromic layer comprises a reductively electrochromic material, or a reductively conductive material when the composite electrochromic layer comprises an oxidatively electrochromic material.
10. The electrochromic device according to claim 1 , wherein said electrolyte layer comprises an electrolyte salt, and said electrode layer comprises a transparent conductive material.
11. A method for manufacturing an electrochromic device, comprising a process of sequentially laminating on a first electrode layer a composite electrochromic layer, an electrolyte layer, an ion storage layer and a second electrode layer, wherein said composite electrochromic layer comprises a laminate structure of a plurality of electrochromic layers, and at least two electrochromic layers among said plurality of electrochromic layers have densities different from each other and are laminated such that the electrochromic layer having a higher density among said two electrochromic layers having different densities is disposed adjacent to said first electrode layer as compared to the electrochromic layer having a lower density,
wherein each of said two electrochromic layers comprises metal oxide and said two electrochromic layers have a density difference of 0.1 g/cm 3 or more, and
wherein said electrochromic layer having the higher density has a density of 5.0 g/cm 3 to 8.0 g/cm 3 .
12. The method for manufacturing the electrochromic device according to claim 11 , wherein the adjustment of density in said plurality of electrochromic layers to be different from each other is performed by laminating any one electrochromic layer among said plurality of electrochromic layers in the form of a porous film as compared to any other electrochromic layer.
13. The method for manufacturing the electrochromic device according to claim 12 , wherein the lamination of said electrochromic layer in the form of a porous film is performed by applying a sputtering process thereto, with a proviso that the process pressure condition is adjusted, or by applying an electron beam evaporation process thereto, with a proviso that the gas condition is adjusted.