Ceramic PCB & Substrates

DBC Alumina Ceramic Substrate with Immersion Gold

Custom DBC alumina ceramic substrate with 0.38 mm Al₂O₃ ceramic, 300 μm copper layers and immersion gold finish for power modules, automotive electronics, LED, industrial power and high-reliability electronic applications.

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Overview

TecCera supplies DBC Alumina Ceramic Substrate with Immersion Gold for power electronics and high-reliability electronic assemblies requiring thick copper conductors, electrical insulation and efficient heat dissipation.

Direct Bonded Copper (DBC) technology bonds copper directly to an alumina ceramic substrate, creating a robust metal–ceramic structure suitable for high-current and high-power applications.

This typical configuration uses an Al₂O₃ ceramic substrate, 300 μm copper layers, a substrate thickness of 0.38 mm, and an immersion gold surface finish.

Compared with fine-line DPC substrates, DBC is particularly suitable for applications where higher current carrying capacity, thicker copper and power cycling performance are more important than ultra-fine circuit geometry.

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Typical Product Specifications

Parameter

Specification

Product

DBC Alumina Ceramic Substrate

Circuit Structure

Double-Sided

Ceramic Material

Alumina (Al₂O₃)

Ceramic Thickness

0.38 mm

Copper Thickness

300 μm

Surface Finish

Immersion Gold

Manufacturing Process

DBC

Dimensions

64.5 × 45 mm

Part No.

12783

Customization

Available

Note: The source specification describes this product as “2 layers.” For an international technical page, Double-Sided DBC is clearer than calling it a conventional “2-layer PCB.”

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Key Advantages of DBC Alumina Ceramic Substrates

Thick Copper for High-Current Applications

DBC technology supports substantially thicker copper conductors than many fine-line ceramic circuit processes.

With copper thickness such as:

300 μm

the substrate can support high-current paths and improved heat spreading, making it suitable for:

  • Power semiconductor modules
  • Motor drives
  • Power converters
  • Industrial power supplies
  • Automotive power electronics
  • High-current switching applications

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Reliable Thermal Management

Alumina ceramic provides significantly better thermal conductivity than conventional FR-4 circuit board materials.

Typical thermal conductivity for alumina ceramics used in electronic substrates is approximately:

20–30 W/m·K

depending on purity, composition and test conditions.

This allows heat generated by power devices to transfer through the electrically insulating ceramic layer toward a heat sink or cooling structure.

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Excellent Electrical Insulation

Alumina ceramic combines thermal conductivity with high electrical insulation.

Typical dielectric strength can reach approximately:

10–20 kV/mm

depending on ceramic grade, thickness and test method.

This makes alumina DBC substrates useful in systems requiring electrical isolation between semiconductor devices and cooling structures.

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Good Thermal Expansion Compatibility

Typical coefficient of thermal expansion for alumina ceramic is approximately:

7–8 × 10⁻⁶/K

This is significantly lower than many organic PCB materials and helps improve dimensional stability under thermal cycling.

For power semiconductor assemblies, reduced thermal-expansion mismatch can help lower mechanical stress within the package.

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High Mechanical Strength

Alumina ceramic provides:

  • High hardness
  • Good flexural strength
  • Wear resistance
  • Dimensional stability
  • Good chemical resistance

Typical flexural strength can fall in the range of approximately:

300–400 MPa

depending on alumina purity and ceramic grade.

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Alumina Ceramic Material

DBC substrates can be manufactured using high-purity alumina ceramics selected according to electrical, thermal and mechanical requirements.

Typical grades include:

  • 96% Alumina
  • 99% Alumina

Key material characteristics include:

  • Dense ceramic structure
  • Good electrical insulation
  • Stable mechanical properties
  • Good thermal stability
  • Low moisture absorption
  • Good resistance to many chemicals
  • High surface hardness

The exact ceramic grade should be selected according to operating voltage, thermal load, dimensional requirements and cost target.

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Why Use DBC Technology?

DBC technology forms a strong bond between thick copper and ceramic without using the type of organic dielectric layer commonly found in conventional PCB structures.

This provides several advantages for power electronics:

  • Thick copper conductors
  • High current carrying capability
  • Efficient heat spreading
  • Electrical insulation
  • Strong copper-to-ceramic bonding
  • High-temperature capability
  • Good thermal cycling performance
  • Stable dimensions

DBC is therefore widely used where conventional FR-4 PCBs or standard metal-core PCBs cannot meet power density and reliability requirements.

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DBC vs DPC

Feature

DBC

DPC

Main Advantage

Thick copper & high power

Fine circuits & precision packaging

Typical Copper Thickness

Medium to thick

Thin to medium

Circuit Precision

Moderate

High

Current Carrying Capability

Excellent

Good

Thermal Management

Excellent

Excellent, depending on ceramic

Fine Line Capability

More limited

Strong advantage

Typical Applications

Power modules, IGBT, automotive power

RF, sensors, LED, semiconductor packaging

This distinction is important for your website:

DBC should not be positioned as simply another version of DPC.

DBC = power density + thick copper + current handling
DPC = precision circuits + fine lines + packaging

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Surface Finish

This product uses:

Immersion Gold

The surface finish can help improve:

  • Solderability
  • Surface oxidation resistance
  • Contact reliability
  • Assembly compatibility

Depending on customer requirements, other finishes may also be evaluated.

For technical quotations, surface-finish type and thickness should be specified according to the actual assembly process.

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Custom DBC Processing Capabilities

TecCera can support customized DBC ceramic substrates according to customer drawings.

Typical customization includes:

  • Ceramic material
  • Ceramic thickness
  • Copper thickness
  • Single-sided or double-sided copper
  • Circuit geometry
  • Substrate dimensions
  • Surface finish
  • Hole and slot design
  • Copper edge geometry
  • Custom outlines
  • Prototype and production quantities

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Typical Alumina Thickness Options

Common ceramic substrate thicknesses can include:

  • 0.25 mm
  • 0.32 mm
  • 0.38 mm
  • 0.50 mm
  • 0.635 mm
  • 1.0 mm

Other thicknesses can be evaluated according to project requirements.

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Applications

Power Semiconductor Modules

DBC alumina ceramic substrates are widely suited to:

  • IGBT modules
  • MOSFET modules
  • Diode modules
  • Power semiconductor packages
  • Intelligent power modules

The thick copper layer provides current carrying capability while the ceramic provides electrical insulation from the baseplate or cooling structure.

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Electric Vehicles

Typical automotive applications include:

  • Traction inverter modules
  • On-board chargers
  • DC/DC converters
  • Motor controllers
  • Battery power electronics
  • Charging systems

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Industrial Power Electronics

Applications include:

  • Frequency converters
  • Industrial inverters
  • Switching power supplies
  • Rectifier modules
  • Servo drives
  • High-voltage power modules

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LED & Lighting

Alumina ceramic substrates can be used in:

  • High-power LED modules
  • COB lighting
  • Industrial lighting
  • Automotive lighting
  • High-brightness LED systems

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Renewable Energy

Typical applications include:

  • Solar inverters
  • Energy storage converters
  • Wind power converters
  • High-power charging equipment

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Electrical and Material Properties

Typical properties of alumina ceramic used for electronic substrates can include:

Property

Typical Range

Alumina Purity

96% / 99%

Thermal Conductivity

Approx. 20–30 W/m·K

Dielectric Strength

Approx. 10–20 kV/mm

Dielectric Constant

Approx. 9–10

CTE

Approx. 7–8 × 10⁻⁶/K

Flexural Strength

Approx. 300–400 MPa

Hardness

High

Water Absorption

Very Low

Actual values depend on ceramic grade, supplier and test method. Final design values should be confirmed from the relevant material datasheet.

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Quality Control

DBC ceramic substrates can be inspected according to customer drawings and technical requirements.

Typical inspection items include:

  • Ceramic appearance
  • Ceramic thickness
  • Flatness
  • Warpage
  • Copper thickness
  • Circuit dimensions
  • Copper edge quality
  • Surface finish
  • Dimensional accuracy
  • Electrical isolation
  • Circuit continuity
  • Final visual inspection

Additional inspection and testing requirements can be defined for individual projects.

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Custom DBC Alumina Ceramic Substrates

TecCera supports custom DBC ceramic substrates for power electronics and thermal management applications.

For quotation, please provide:

  • Ceramic material
  • Ceramic purity
  • Substrate dimensions
  • Ceramic thickness
  • Copper thickness
  • Single-sided or double-sided design
  • Circuit drawing
  • Surface finish
  • Operating voltage
  • Current requirement
  • Quantity
  • Application
  • Special testing requirements

Send us your drawing or technical specifications for evaluation and quotation.

How to Get a Quote

Send us your drawing or technical requirements. We will review the material, dimensions, tolerances and application conditions before quotation.

  1. Inquiry
  2. Technical Review
  3. Quotation
  4. Order

Need a Custom Ceramic Component?

Send us your drawing, dimensions, material requirements, quantity and application conditions.

Request a Quote