TMM 10i is the isotropic high-permittivity variant in this part of the TMM family. Its process and Design Dk differ from TMM 10, and the i suffix should remain in both the electrical model and purchase specification. It is a candidate for compact microwave components where field orientation deserves explicit attention.

Material system

Ceramic-filled thermoset polymer

Technical properties

TMM 10i — reported properties and conditions
PropertyReported valueConditions / source
Process dielectric constant9.80 ± 0.245Typical; 10 GHz, Z direction; IPC-TM-650 2.5.5.5. Test temperature is not stated in this datasheet row. Source
Design dielectric constant9.9Typical, 8–40 GHz; differential phase length method. Average across the common constructions in the cited datasheet. Source
Dissipation factor0.002Typical; 10 GHz, Z direction; IPC-TM-650 2.5.5.5. Test temperature is not stated in this datasheet row. Source
Thermal conductivity0.76 W/(m·K)Typical; 80°C, Z direction, ASTM C518; product datasheet thermal table. Source
CTE, X axis19 ppm/°CTypical; 0°C to 140°C; ASTM E831 and IPC-TM-650 2.4.41, product datasheet. Source
CTE, Y axis19 ppm/°CTypical; 0°C to 140°C; ASTM E831 and IPC-TM-650 2.4.41, product datasheet. Source
CTE, Z axis20 ppm/°CTypical; 0°C to 140°C; ASTM E831 and IPC-TM-650 2.4.41, product datasheet. Source
Thermal coefficient of dielectric constant (estimated)-43 ppm/°CEstimated, explicitly marked with an asterisk in the datasheet; -55°C to 125°C, IPC-TM-650 2.5.5.5. Frequency is not separately stated in this row. Source
Water absorption0.16 %Typical; D24/23, 0.050 inch (1.27 mm) specimen, ASTM D570; product datasheet, not the selector's different moisture conditions. Source

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

Selection and design notes

  • Investigate it when a geometry involves fields in more than one material direction or when the TMM 10i data fit an existing component architecture. Compare field-dependent behavior using the appropriate model rather than reducing isotropy to a single marketing claim.
  • For a small filter, use a full geometry tolerance study. The Design Dk being numerically close to the process Dk does not imply that every construction or discontinuity is represented without calibration.

Thickness and copper options

Use a confirmed TMM 10i thickness and tolerance. Its material name is not a thickness or mechanical specification.

Require the actual foil weight and surface treatment when comparing Q or insertion loss.

Fabrication considerations

  • Agree the substrate machining and copper patterning process with a TMM-capable fabricator. Keep dimensional controls on slots, holes and plated features aligned with the resonant structures they influence, and include a representative test coupon where practical.

Application fit

  • Compact microwave filters
  • High-Dk resonators
  • Multidirectional RF structures

Limits and substitution checks

  • TMM 10i and TMM 10 are not interchangeable variants. The published negative temperature coefficient and non-flame-retardant selector classification remain relevant. Do not treat the relatively low Df as a prediction of finished filter insertion loss, which includes conductors, launches and radiation.
  • The cited TCDk of -43 ppm/°C is marked estimated in the manufacturer table; confirm measured behavior for a temperature-critical design.

Technical sources