Electrode for electrolysis
An electrode for electrolysis and a method for manufacturing the same, wherein an electrode coating layer for electrolysis is provided in plurality, and the tin content in each coating layer is configured to increase as the distance from a substrate increases, and the titanium content therein is configured to decrease as the distance from the substrate increases, so that excellent performance is maintained, and also delamination and the like does not occur during firing, so that excellent durability may be implemented.
1 . An electrode for electrolysis comprising:
a metal substrate layer; and
a first coating layer to an N-th coating layer, wherein the first coating layer is formed on at least one surface of the metal substrate layer, and the first coating layer to the N-th coating layer are formed sequentially stacked, and Equations 1 and 2 below are satisfied:
CS n-1 <CS n [Equation 1]
CT n-1 <CT n [Equation 2]
wherein in the Equations,
CS n is a Sn content (mol %) in an n-th coating layer,
CT n is a Ti content (mol %) in an n-th coating layer,
n is an integer of 2 to N, and
N is an integer of 4 or greater.
2 . The electrode of claim 1 , wherein Equation 3 below is further satisfied:
CS n-1 +CT n-1 =CS n +CT n [Equation 3]
wherein in the Equations,
n is an integer of 2 to N, and
N is an integer of 4 or greater.
3 . The electrode of claim 1 , wherein the Equation 1 above is Equation 1-2 below:
1<CS n /CS n-1 ≤2. [Equation 1-2]
4 . The electrode of claim 1 , wherein the Equation 2 above is Equation 2-2 below:
0.5≤CT n /CT n-1 <1. [Equation 2-2]
5 . The electrode of claim 1 , wherein CS 1 +CT 1 is 30 mol % to 60 mol %.
6 . The electrode of claim 1 , wherein the first coating layer to the N-th coating layer comprise one or more platinum group metals selected from the group consisting of ruthenium, rhodium, palladium, osmium, iridium, and platinum.
7 . The electrode of claim 6 , wherein a content of the platinum group metal in the first coating layer to the N-th coating layer is constant.
8 . The electrode of claim 6 , wherein the first coating layer to the N-th coating layer comprise ruthenium, iridium, and platinum.
9 . The electrode of claim 8 , wherein a total content of the ruthenium in the first coating layer to the N-th coating layer is 20 g/m 2 or greater.
10 . The electrode of claim 1 , wherein the N is an integer of 4 to 10.
11 . The electrode of claim 1 , wherein the metal substrate layer comprises one or more of nickel, titanium, tantalum, aluminum, hafnium, zirconium, molybdenum, tungsten, or stainless steel.
12 . A method for manufacturing an electrode for electrolysis, the method comprising:
applying and firing a first coating composition on at least one surface of a metal substrate to form a first coating layer; and
sequentially applying and firing a second coating composition to an N-th coating composition on the formed first coating layer to form a second coating layer to an N-th coating layer, wherein Equations 4 and 5 below are satisfied:
CS′ n-1 <CS′ n [Equation 4]
CT′ n-1 >CT′ n [Equation 5]
wherein in the Equations,
CS′ n is a Sn content (mol %) in an n-th coating composition,
CT′ n is a Ti content (mol %) in an n-th coating composition,
n is an integer of 2 to N, and
N is an integer of 4 or greater.
13 . The method of claim 12 , wherein the first coating composition to the N-th coating composition comprise one or more platinum group metals selected from the group consisting of ruthenium, rhodium, palladium, osmium, iridium, and platinum.
14 . The method of claim 12 , wherein the firing is performed for 1 hour or less at a temperature of 400° C. to 600° C.
15 . The method of claim 12 , wherein a solvent of the first coating composition to the N-th coating composition comprises one or more g of butanol, isopropyl alcohol, or butoxyethanol.