PCB Material Search

Data compiled from pcbdirectory.com

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  • Type: Copper-clad
  • material: PTFE
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    Loss Tangent (Df)

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    Dielectric Constant (Dk)

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    Decomposition Temperature (Td)

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    Glass Transition Temperature (Tg)

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    UL Compliant

    RoHS Compliant

    Product Image

    Rogers Corporation - AD250C

    • Type: Copper-clad
    • Dk: 2.52
    • Df: 0.0013
    • Td: 500 ˚C
    • Frequency: 10 GHz
    • Cte xy: 47, 29 ppm/˚C
    • Cte z: 196 ppm/˚C
    more info
    Product Image

    Rogers Corporation - duroid 5880LZ

    • Type: Copper-clad
    • Frequency: 10 GHz
    • Lead Free: yes
    • Cte xy: 54, 47 ppm/˚C
    • Cte z: 40 ppm/˚C
    • Electrical strength: 40 kV
    • Flamibility: V-0
    more info

    Rogers Corporation - TC600

    • Type: Copper-clad
    • Dk: 6.15
    • Td: 512 to 572 ˚C
    • Frequency: 0.018 to 10 GHz
    • Arc resistance: 240 Sec
    • Cte xy: 9, 9 ppm/˚C
    • Cte z: 35 ppm/˚C
    more info
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    Isola Group - IS680

    • Type: Copper-clad
    • Td: 360 ˚C
    • Tg: 200 ˚C
    • Frequency: 1 to 10 GHz
    • UL: yes
    • Lead Free: yes
    • Arc resistance: 139 Sec
    more info
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    Rogers Corporation - RO4730G3

    • Type: Copper-clad
    • Df: 0.0028
    • Td: 411 ˚C
    • Tg: 280 ˚C
    • Frequency: 10 GHz
    • Lead Free: yes
    • Cte xy: 15.9, 14.4 ppm/˚C
    more info
    Product Image

    Rogers Corporation - CLTE

    • Type: Copper-clad
    • Dk: 2.98
    • Df: 0.0021
    • Td: 538 ˚C
    • Frequency: 10 GHz
    • Cte xy: 9.9, 9.4 ppm/˚C
    • Cte z: 57.9 ppm/˚C
    more info
    Product Image

    Isola Group - I-TERA MT40

    • Type: Copper-clad
    • Dk: 3.45
    • Df: 0.0031
    • Td: 360 ˚C
    • Tg: 200 to 205 ˚C
    • Frequency: 2 to 10 GHz
    • UL: yes
    more info
    Product Image

    Rogers Corporation - IsoClad 933

    • Type: Copper-clad
    • Dk: 2.33
    • Df: 0.0016
    • Frequency: 10 GHz
    • Cte xy: 31, 35 ppm/˚C
    • Cte z: 203 ppm/˚C
    • Dielectric breakdown: 45 kV
    more info
    Product Image

    Rogers Corporation - AD255C-IM

    • Type: Copper-clad
    • Dk: 2.55
    • Df: 0.0014
    • Td: 550 ˚C
    • Frequency: 10 GHz
    • Cte xy: 34, 26 ppm/˚C
    • Cte z: 196 ppm/˚C
    more info
    Product Image

    Rogers Corporation - duroid 6010.2LM

    • Type: Copper-clad
    • Df: 0.0023
    • Td: 500 ˚C
    • Frequency: 8 to 40 GHz
    • Lead Free: yes
    • Cte xy: 24, 24 ppm/˚C
    • Cte z: 47 ppm/˚C
    more info

    How to Build Your PCB Stackup

    Many PCBs will not function properly without the right dielectric materials as these influence EMI, signal integrity, and power integrity. The other dimension to consider on many mass-produced products is cost, as material selection will be a major factor determining volume production expense. To start building your own PCB stackup, follow these steps:

    • Prioritize your specifications - All PCB laminate materials come with tradeoffs, requiring a balance among cost, dielectric properties, and thermal reliability. Start by determining the important specifications before selecting material sets and planning your PCB layer assignments.

    • Review materials datasheets - Once base materials are selected, review the material datasheets, consult a PCB design services firm, or consult a PCB manufacturer for more information on use cases and laminate thickessness for you selected material set.

    • Check with your fabricator - Before finalizing your stackup design, have the design reviewed by a competent fabrication house. Hyrid PCB stackups builds, HDI PCB materials, thin PTFE laminates, and metal-core or ceramics all require special processing during fabrication to ensure reliability.

    The typical stackup arrangement shown below illustrates the stackup design approach and layer assigments in many commercial products. In between each of the signal/plane layer groups, additional signal layers may be present as needed, often being used to route important high-speed signals or large copper pours for power routing.

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