China Titanium-Based Lead Dioxide Anode Suppliers - Durable Ti/PbO₂ Factory for Electrochemical Applications
Key Features and Critical Performance
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Structural Design: Multi-layer Compositeness is Key
The titanium-based lead dioxide anode is not a simple coating, but rather a "sandwich" structure:
- Titanium matrix: Provides mechanical strength support.
- Intermediate bonding layer: To prevent the titanium surface from oxidizing during electrolysis and forming an insulating TiO₂ passivation film that leads to failure, a pre-coated intermediate layer such as tin-sulfide oxide, platinum group metal oxide, or tantalum will be applied. This is the core for the long lifespan of the electrode.
- Surface active layer (PbO₂): The actual functional layer, divided into α-PbO₂ and β-PbO₂, is usually used in combination to optimize performance.
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Core Performance
- High catalytic and strong oxidation capabilities: A high oxygen evolution potential (approximately 1.75V), which enables the preferential oxidation and degradation of organic substances during electrolysis rather than the release of oxygen.
- Excellent corrosion resistance: Extremely stable in oxidizing media such as strong acids (such as sulfuric acid and nitric acid).
- Good conductivity and stability: PbO₂ itself has good conductivity, and with the titanium substrate, the electrode resistance is low, and the cell voltage can be 5%–8% lower than that of traditional anodes. As an insoluble anode, the size is stable.
- Economy: The material cost is much lower than that of platinum and other precious metal anodes.
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Main Limitations
- Degradation due to passivation failure: After the intermediate layer is damaged, the oxidation of the titanium substrate will cause the coating to peel off.
- Potential lead leaching: In extreme conditions or when the coating quality is poor, there is a risk of trace leaching of lead ions, which limits its application in certain high-purity product fields.
- Complex preparation process: Multi-layer preparation (such as pre-treatment, deposition of the intermediate layer, electro-deposition of PbO₂) requires high standards and significant quality variations.
Product Display
Analysis of Main Application Domains
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Treatment of refractory organic wastewater (the most widely used application)
Hydrometallurgy and Electrochemical Industry
· Non-ferrous metal electroplating: This process is used for electrolytic extraction of metals such as zinc, copper, and manganese, which can reduce energy consumption and improve product purity.
· Electrochemical synthesis of chemical products: This is used for electrolytic synthesis of chlorates, hydrogen peroxide (H₂O₂), and organic compounds such as 4-pyridinecarboxylic acid.
· Electrochemical synthesis of chemical products: This is used for electrolytic synthesis of chlorates, hydrogen peroxide (H₂O₂), and organic compounds such as 4-pyridinecarboxylic acid.
Other Electrochemical Processes
In fields such as electroplating, high-purity water production, and cathodic protection, they are used as alternative anodes for oxygen or chlorine evolution compared to traditional graphite or lead alloy anodes.
Summary and Usage Suggestions
✅ How to Choose and Use
- Preferred scenarios: For treating complex and non-biodegradable organic wastewater, or when conducting electrolysis operations in a strongly acidic medium.
- Key evaluation indicators: Pay attention to the data from the accelerated life test; understand the specific material of the intermediate layer (such as tin-selenium oxide, tantalum, etc.) and the process.
⚖️ Horizontal Comparison and Advancement
- vs. Stainless steel/nickel anodes: Those are mainly used as cathodes or soluble anodes in alkaline or weakly corrosive environments, while titanium-based lead dioxide is an insoluble anode for highly corrosive and oxidizing environments, with completely different functions.
- vs. Iridium-tantalum coated DSA: The latter is superior in chlorine evolution reactions, but in high oxygen evolution potential and strong oxidizing organic wastewater treatment, titanium-based lead dioxide has a greater cost advantage.
⚠️ Usage Precautions:
· Avoid long-term use in a strongly alkaline environment (PbO₂ will dissolve).
· Ensure that the electrolyte does not contain fluoride ions (which will severely corrode the titanium substrate).
· When reactivating new electrodes or after a long period of inactivity, it is recommended to perform polarization treatment at a low current first.
· Avoid long-term use in a strongly alkaline environment (PbO₂ will dissolve).
· Ensure that the electrolyte does not contain fluoride ions (which will severely corrode the titanium substrate).
· When reactivating new electrodes or after a long period of inactivity, it is recommended to perform polarization treatment at a low current first.
Advantages and Disadvantages
| Comparison of Advantages and Disadvantages of Titanium Based Lead Dioxide Anode and Lead Anode | ||||
| No. | Technical Specification | Lead Alloy Anode | Titanium Based Lead Dioxide Anode | |
|---|---|---|---|---|
| 1 | The quality of copper | 99.8617% (Lead ions are easy to exceed the standard) | 99.9972% | |
| 2 | Load current density | 260 A/m² | 400 A/m² | |
| 3 | Anode mud | Clean trough the slot once a month | Without clear trough the slot | |
| 4 | Manual operation | Heavy weight, easy to fracture conductive bean lifting | Light weight, no corrosion | |
| 5 | Sulfuric acid concentration | 180~250 g/litre | <350 g/litre | |
| 6 | Operating temperature | <60℃ | <60℃ | |
| 7 | Service life | 12~36 months | >36 months | |
| 8 | Whether can repair | Beyond repair | Can be re-plated | |
| 9 | Chlorine ion content | <10 ppm | <2000 ppm | |
| 10 | Fluorine ion content | <1 ppm | <500 ppm | |
| 11 | Current efficiency | 90%~95% | 88%~92% (About 3% lower than lead alloy) | |
| 12 | Domestic price | 3400~3800 RMB/PC | 3600~4000 RMB/PC (15~20% more expensive than lead alloy) | |
| 13 | Weight / pc | ~120 kg/pc | 40~50 kg/pc (Single person operation) | |
| A | 14 | Structural style | Slab solid structure | Network structure, good liquid flow |
| 15 | Corrosion | The liquid and gas phase interface is prone to corrosion | The interface does not corrode | |
| 16 | Board face level | 3~6 months out of the slot, need manual recalibration | Non-deformation | |
Frequently Asked Questions (FAQ)
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Q What is a titanium-based lead dioxide anode and how is it structured?A titanium-based lead dioxide anode is a multi-layer composite electrode consisting of three key layers: a titanium matrix that provides mechanical strength, an intermediate bonding layer (such as tin-sulfide oxide or tantalum) that prevents passivation failure, and a surface active PbO₂ layer (combining α-PbO₂ and β-PbO₂) that serves as the functional electrochemical layer. This "sandwich" structure is what gives it its superior performance and long service life.
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Q What are the main application areas of titanium-based lead dioxide anodes?The most widely used application is the treatment of refractory organic wastewater. Additionally, they are extensively used in hydrometallurgy (electrolytic extraction of zinc, copper, and manganese), electrochemical synthesis of chemical products (such as chlorates and hydrogen peroxide), electroplating, high-purity water production, and cathodic protection systems as a superior alternative to traditional graphite or lead alloy anodes.
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Q How does the titanium-based lead dioxide anode compare to a traditional lead alloy anode?Compared to lead alloy anodes, titanium-based lead dioxide anodes offer significantly higher load current density (400 A/m² vs. 260 A/m²), much longer service life (>36 months vs. 12–36 months), higher copper product purity (99.9972% vs. 99.8617%), lighter weight (40–50 kg vs. ~120 kg per piece), no anode mud generation, and no deformation over time. While the initial price is 15–20% higher, the overall operational savings and reduced maintenance make it more cost-effective.
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Q What are the key limitations or risks of using titanium-based lead dioxide anodes?The main limitations include: (1) Passivation failure — if the intermediate bonding layer is damaged, the titanium substrate oxidizes and the coating peels off; (2) Potential lead leaching — in extreme conditions or with poor coating quality, trace lead ions may leach, restricting use in high-purity product applications; (3) Complex preparation — the multi-layer manufacturing process requires high precision, and quality can vary significantly between suppliers.
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Q What precautions should be taken when using titanium-based lead dioxide anodes?Three important precautions must be observed: (1) Avoid long-term use in strongly alkaline environments, as PbO₂ will dissolve under such conditions; (2) Ensure the electrolyte does not contain fluoride ions, which can severely corrode the titanium substrate; (3) For new electrodes or those that have been inactive for a long period, always perform a low-current polarization treatment before full operation to condition the electrode surface.
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Q How does the titanium-based lead dioxide anode compare to iridium-tantalum coated DSA electrodes?Iridium-tantalum coated DSA (Dimensionally Stable Anode) electrodes excel in chlorine evolution reactions, such as those used in the chlor-alkali industry, and offer an extremely long operational lifespan. However, for applications requiring a high oxygen evolution potential and strong oxidizing capability — particularly in treating refractory organic wastewater — titanium-based lead dioxide anodes provide a significantly greater cost advantage while delivering comparable electrochemical performance.











