RO4003C and RO4350B are related thermoset RF laminate candidates, but they are not identical design inputs. Start with flame-performance requirements, then compare the electrical construction and the cost of qualifying the chosen build.

Apply required constraints before preferences

The official RO4000 datasheet differentiates the flame-performance status of the grades. When a project requires a particular recognized construction, verify that exact grade, thickness and foil configuration rather than treating the family as one approval. LoPro constructions also deserve their own qualification check. Read the grade records for RO4003C and RO4350B with the datasheet footnotes attached.

Keep the dielectric inputs consistent

Process Dk supports material characterization and production control; design Dk serves a different circuit-model purpose. Comparing one grade’s process value with the other’s design value exaggerates or obscures the actual difference. Set the same dielectric thickness, copper and line topology before recalculating geometry. If the model is calibrated to a measured baseline, retain that baseline and document how the candidate’s dielectric input was chosen.

Example: changing a matching network

Suppose an existing RF amplifier board is being revised to meet a new material requirement. Replacing the laminate name on the drawing is insufficient: transmission-line widths, electrical lengths, coupled sections and the package launch need review. Use the microstrip tool for an initial width check, then update the circuit or electromagnetic model. Include a line coupon that lets the prototype separate stackup error from device matching behavior.

Compare practical costs on equal terms

Request the same panel quantity, stackup, foil and acceptance package for both candidates. Ask whether either construction requires additional procurement or process qualification at the selected fabricator; do not assume a universal price premium from the grade name. Check the bonding route if the board is multilayer. Select the candidate that meets mandatory constraints with adequate measured margin, and prevent silent substitutions by recording the complete material callout.

A useful approval note records why the selected grade won: a mandatory material requirement, adequate loss margin, a supported multilayer build, or another stated reason. It should also identify which property would trigger reconsideration if the circuit or operating environment changes later.

Source-aware property comparison

RO4003C

RO4003C — reported properties and conditions
PropertyReported valueConditions / source
Process dielectric constant3.38 ± 0.05Typical, 10 GHz, 23°C; IPC-TM-650 2.5.5.5 clamped stripline; thickness direction. Source
Design dielectric constant3.55Typical, 8–40 GHz; differential phase length method. Average across the common constructions in the cited datasheet. Source
Dissipation factor0.0027Typical, 10 GHz, 23°C; IPC-TM-650 2.5.5.5; thickness direction. Source
Thermal conductivity0.71 W/(m·K)Typical; ASTM C518, 80°C; through-thickness thermal conduction. Source
CTE, X axis11 ppm/°CTypical; -55°C to 288°C, IPC-TM-650 2.4.41; average expansion over the interval, not necessarily linear. Source
CTE, Y axis14 ppm/°CTypical; -55°C to 288°C, IPC-TM-650 2.4.41; average expansion over the interval, not necessarily linear. Source
CTE, Z axis46 ppm/°CTypical; -55°C to 288°C, IPC-TM-650 2.4.41; average expansion over the interval, not necessarily linear. Source
Thermal coefficient of dielectric constant40 ppm/°CTypical; -50°C to 150°C, IPC-TM-650 2.5.5.5 (modified temperature measurement); 10 GHz. Source
Water absorption0.06 %Typical; 48 h at 50°C, 60 mil specimen, ASTM D570. Source
Density1.79 g/cm³Typical; 23°C, ASTM D792. Source

Typical reported values are not a purchase specification. Process Dk, design Dk and values measured at different frequencies are not interchangeable.

RO4350B

RO4350B — reported properties and conditions
PropertyReported valueConditions / source
Process dielectric constant3.48 ± 0.05Typical, 10 GHz, 23°C; IPC-TM-650 2.5.5.5 clamped stripline; thickness direction. Source
Design dielectric constant3.66Typical, 8–40 GHz; differential phase length method. Average across the common constructions in the cited datasheet. Source
Dissipation factor0.0037Typical, 10 GHz, 23°C; IPC-TM-650 2.5.5.5; thickness direction. Source
Thermal conductivity0.69 W/(m·K)Typical; ASTM C518, 80°C; through-thickness thermal conduction. Source
CTE, X axis10 ppm/°CTypical; -55°C to 288°C, IPC-TM-650 2.4.41; average expansion over the interval, not necessarily linear. Source
CTE, Y axis12 ppm/°CTypical; -55°C to 288°C, IPC-TM-650 2.4.41; average expansion over the interval, not necessarily linear. Source
CTE, Z axis32 ppm/°CTypical; -55°C to 288°C, IPC-TM-650 2.4.41; average expansion over the interval, not necessarily linear. Source
Thermal coefficient of dielectric constant50 ppm/°CTypical; -50°C to 150°C, IPC-TM-650 2.5.5.5 (modified temperature measurement); 10 GHz. Source
Water absorption0.06 %Typical; 48 h at 50°C, 60 mil specimen, ASTM D570. Source
Density1.86 g/cm³Typical; 23°C, ASTM D792. Source

Typical reported values are not a purchase specification. Process Dk, design Dk and values measured at different frequencies are not interchangeable.

Choose required flame status first, then revalidate geometry and the complete fabrication construction.

Technical sources