IP Library Granted Patent US 12,448,693
Granted Patent B2
US 12,448,693 · App. 16/973,245 · Granted Oct 21, 2025

Anode for electrolytic evolution of chlorine

Inventors: Alice Gargiulo (Milan, IT); Alice Calderara (Milan, IT); Luciano Iacopetti (Milan, IT)
Assignee: INDUSTRIE DE NORA S.P.A.
C25B11/081C23C18/02C23C18/1225C25B1/26C25B9/23C25B11/063C25B13/00
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Quick Facts
Patent No.
US 12,448,693
App. No.
16/973,245
Granted
Oct 21, 2025
Kind
B2
Abstract

The invention relates to a process for obtaining a electrode usable as a anode in electrolytic cells for the production of chlorine. The electrode thus obtained comprises a catalytic layer containing oxides of tin, ruthenium, iridium and titanium applied to a substrate of a valve metal.

Claims (18)

1. A method for the production of an electrode comprising the following steps:

a) applying to a valve metal substrate an acetic solution consisting of hydroxyacetochloride complexes of iridium, ruthenium, tin and titanium, subsequent drying at 50-60° C. and thermal decomposition at 450-600° C. for a time of 5 to 30 minutes until reaching a specific noble metal loading expressed as the sum of iridium and ruthenium between 0.4 and 1 g/m 2 ; followed by

b) repeating step a) until obtaining a catalytic coating with a specific noble metal loading of 6 to 12 g/m 2 ; and thereafter

c) heat treating at 450-600° C. for a time of 50 to 200 minutes.

2. The method according to claim 1 , wherein said acetic solution contains 5-40% of tin, 3.6-15% of iridium, 18-40% of ruthenium and 30-70% of titanium, in molar percentage referred to the elements.

3. A method for the production of an electrode for gas evolution in electrolytic processes comprising the following steps:

a) applying to a valve metal substrate an acetic solution consisting of hydroxyacetochloride complexes of iridium, ruthenium, tin and titanium complexes containing 5-40% of tin, 3.6-15% of iridium, 18-40% of ruthenium and 30-70% of titanium, in molar percentage referred to the elements; subsequent drying at 50-60° C. and thermal decomposition at 450-600° C. for a time of 5 to 30 minutes until reaching a specific noble metal loading expressed as the sum of iridium and ruthenium of 0.4 to 1 g/m 2 ; followed by

b) repeating step a) until obtaining a catalytic coating with a specific noble metal loading of 6 to 12 g/m 2 ; and thereafter

c) heat treating at 450-600° C. for a time of 50 to 200 minutes.

4. The method according to claim 3 , wherein said acetic solution contains 6-30% of tin, 3.7-12% of iridium, 20-30% of ruthenium and 50-70% of titanium, in molar percentage referred to the elements.

5. The method according to claim 1 , wherein the temperature of said thermal decomposition in step a) and heat treatment in step c) is between 48° and 550° C.

6. A method for the production of an electrode comprising the following steps:

a) applying to a valve metal substrate an acetic solution consisting of hydroxyacetochloride complexes of iridium, ruthenium, tin and titanium, subsequent drying at 50-60° C. and thermal decomposition at 450-600° C. for a time of 5 to 30 minutes until reaching a specific noble metal loading expressed as the sum of iridium and ruthenium between 0.4 and 1 g/m 2 ; followed by

b) repeating step a) until obtaining a catalytic coating with a specific noble metal loading of 6 to 12 g/m 2 ; and thereafter

c) heat treating at 450-600° C. for a time of 50 to 200 minutes, thereby obtaining the electrode comprising the valve metal substrate and the catalytic coating containing 5-40% of tin, 3.6-15% of iridium, 18-40% of ruthenium and 30-70% of titanium, in the form of metals or their oxides in molar percentage referred to the elements.

7. The method according to claim 1 , wherein said acetic solution contains 6-30% of tin, 3.7-12% of iridium, 20-30% of ruthenium and 50-70% of titanium, in molar percentage referred to the elements.

8. The method according to claim 1 , wherein said acetic solution contains 8-18% of tin, 4-10% of iridium, 18-36% of ruthenium and 45-65% of titanium, in molar percentage referred to the elements.

9. The method according to claim 3 , wherein said acetic solution contains 8-18% of tin, 4-10% of iridium, 18-36% of ruthenium and 45-65% of titanium, in molar percentage referred to the elements.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 18, 2020
From: GARGIULO, ALICE; CALDERARA, ALICE; IACOPETTI, LUCIANO
To: INDUSTRIE DE NORA S.P.A.
Reel/Frame 054688/0781 →
Priority Claims (1)
IT 102018000006544 · Jun 21, 2018 · national
Continuity (1)
Related Publication 20210238757A1 · Aug 5, 2021
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