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ST0503 Platinum Ruthenium Sputtering Target, Pt/Ru

Chemical Formula: Pt/Ru
Catalog Number: ST0503
CAS Number: 172515-31-0
Purity: 99%~99.999%
Shape: Discs, Plates, Column Targets, Step Targets, Custom-made

Platinum Ruthenium sputtering target  come in various forms, purities, sizes, and prices. Thin Film Materials (TFM) manufactures and supplies top-quality sputtering targets at competitive prices.

Introduction

Platinum Ruthenium (Pt/Ru) Sputtering Target is a high-performance noble metal alloy target widely used in electrochemical, catalytic, and microelectronic thin film applications. By combining platinum’s exceptional corrosion resistance and catalytic activity with ruthenium’s enhanced oxidation tolerance and structural stability, Pt/Ru alloys deliver superior performance in demanding environments.

Pt/Ru sputtering targets are particularly important in fuel cell technology, microelectronic contacts, and advanced sensor systems where chemical durability, electrical conductivity, and surface catalytic properties are critical.


Detailed Description

Platinum Ruthenium is a solid-solution alloy system with tunable composition, typically supplied in customized atomic or weight ratios such as Pt:Ru = 90:10, 80:20, or application-specific formulations. The addition of ruthenium significantly enhances platinum’s resistance to carbon monoxide poisoning in electrochemical reactions, making Pt/Ru a benchmark catalyst material in proton exchange membrane (PEM) fuel cells.

Pt/Ru sputtering targets are manufactured through vacuum melting and controlled casting to ensure homogeneous alloy distribution. Due to the high density and noble metal nature of both elements, precise metallurgical processing is essential to achieve:

  • Uniform elemental distribution

  • Stable sputtering rates

  • Low porosity and minimal inclusion content

  • High mechanical integrity during high-power sputtering

Typical relative density reaches ≥ 99% of theoretical density, reducing the risk of arcing and particle generation.

Available configurations include:

  • Planar circular targets (1″–8″ diameter and larger custom sizes)

  • Rectangular targets for inline coating systems

  • Bonded to copper backing plates for enhanced heat dissipation

Pt/Ru thin films deposited via DC magnetron sputtering exhibit:

  • Excellent electrical conductivity

  • High corrosion and chemical resistance

  • Strong adhesion to oxide and semiconductor substrates

  • Stable catalytic behavior in electrochemical environments

The alloy’s microstructure and surface composition can be fine-tuned by adjusting sputtering parameters, enabling precise control over catalytic and electrical performance.


Applications

Platinum Ruthenium sputtering targets are widely used in:

  • Fuel Cell Catalysts – Anode catalyst layers in PEM fuel cells

  • Electrochemical Sensors – Stable catalytic electrodes

  • Microelectronic Contacts – Corrosion-resistant conductive layers

  • Thin Film Electrodes – Electrochemical and energy storage devices

  • Catalytic Research – Surface reaction and material science studies

  • MEMS & Microfabrication – Noble metal thin film components

The Pt/Ru system remains a leading material in electrochemical energy conversion technologies.


Technical Parameters

ParameterTypical Value / RangeImportance
Purity≥ 99.95% (metals basis typical)Ensures stable electrical and catalytic performance
Composition RatioCustom (e.g., Pt 80–90%, Ru 10–20%)Controls catalytic activity and CO tolerance
Density≥ 99% of theoreticalMinimizes arcing and improves sputtering stability
Diameter25 – 200 mm (custom available)Matches sputtering system holders
Thickness3 – 6 mm (typical)Influences target lifetime
BondingCopper backing plate (optional)Enhances thermal conductivity

Comparison with Related Materials

MaterialKey AdvantageTypical Application
Platinum RutheniumEnhanced CO tolerance & catalytic efficiencyFuel cell anodes
Pure PlatinumExcellent corrosion resistanceMicroelectronic contacts
RutheniumHigh hardness & oxidation resistanceBarrier layers
IridiumExtreme corrosion resistanceHarsh chemical environments

Compared to pure platinum, Pt/Ru alloys demonstrate superior catalytic activity in hydrogen oxidation reactions, especially under conditions where CO contamination is present.


FAQ

QuestionAnswer
Can the Pt/Ru composition be customized?Yes, atomic or weight ratios can be precisely tailored for catalytic or electronic requirements.
Is the target compatible with DC sputtering?Yes, due to its metallic conductivity, DC magnetron sputtering is typically used.
Are backing plates recommended?For larger diameters or high-power applications, copper backing plates improve thermal stability.
What industries use Pt/Ru most frequently?Fuel cell manufacturing, electrochemistry research, semiconductor fabrication, and sensor technology.
How is the target packaged?Vacuum-sealed with protective cushioning and export-grade cartons or wooden crates for secure transport.

Packaging

Our Platinum Ruthenium Sputtering Targets are meticulously tagged and labeled externally to ensure efficient identification and maintain high standards of quality control. We take great care to prevent any potential damage during storage and transportation, ensuring the targets arrive in perfect condition.


Conclusion

Platinum Ruthenium (Pt/Ru) Sputtering Targets provide a robust and highly efficient solution for catalytic and conductive thin film deposition. With customizable composition, high density, and exceptional chemical stability, Pt/Ru alloys support advanced applications in fuel cells, electrochemical systems, and microelectronics.

For detailed specifications and a quotation, please contact us at sales@thinfilmmaterials.com.

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FAQ

It’s the source material (in solid form) used in sputter deposition to eject atoms or molecules that then form a thin film on a substrate.

Targets can be pure metals (e.g., gold, copper, aluminum), ceramics (e.g., Al₂O₃, SiO₂, TiO₂), alloys, or composites—chosen based on the film’s desired properties.

 

They are produced by processes such as melting/casting for metals or sintering (often with hot isostatic pressing) for ceramics and composite targets to ensure high density and purity.

 

In a vacuum chamber, a plasma (typically argon) bombards the target, ejecting atoms that travel and condense on a substrate, forming a thin film.

 

Key factors include the target’s purity, density, grain structure, and the sputtering yield (i.e. how many atoms are ejected per incident ion), as well as operating conditions like power density and gas pressure.

 

Operators monitor target erosion (often by measuring the depth of the eroded “race track”) or track total energy delivered (kilowatt-hours) until it reaches a threshold that can compromise film quality.

 

Fragile materials (such as many ceramics or certain oxides) and precious metals often require a backing plate to improve cooling, mechanical stability, and to allow thinner targets that reduce material costs.

 

DC sputtering is used for conductive targets, while RF sputtering is necessary for insulating targets (like many oxides) because it prevents charge buildup on the target’s surface.

 

In reactive sputtering, a reactive gas (e.g., oxygen or nitrogen) is introduced to form compound films on the substrate, but it may also “poison” the target surface if not carefully controlled.

 

Many manufacturers prefer to control raw material quality by sourcing their own powders; using external powders can risk impurities and inconsistent target properties.

 

Targets should be stored in clean, dry conditions (often in original packaging or re-wrapped in protective materials) and handled with gloves to avoid contamination, ensuring optimal performance during deposition.

Deposition rate depends on factors such as target material and composition, power density, working gas pressure, substrate distance, and the configuration of the sputtering system (e.g., magnetron design).

 
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