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May 25, 2026Scientific Reports0 citationsOpen Access

Permittivity evaluation of electrically thin low-loss materials by using a generalized free-space model without any formal calibration

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UHUgur C. HasarHKHüseyin KorkmazYKYunus Kaya

Key Points

  • To develop a new free-space model for accurately determining the permittivity of low-loss and electrically thin materials.
  • Proposed a generalized free-space model based on reflection and transmission measurements.
  • Conducted free-space measurements at X-band (8.2–12.4 GHz) for two low-loss samples: Rogers 4350B and FR-4.
  • Considered sample misalignment effects and evaluated performance without calibration of antenna regions.
  • Validated the new method using measurements on Rogers 4350B (W ≈ 1.52 mm) and FR-4 (W ≈ 1.60 mm) samples.
  • Demonstrated that the model accounts for impedance mismatches and ringing effects in antenna connections.
  • Showed high accuracy in permittivity evaluation without dependence on reference-plane transformation.

Abstract

Abstract A general free-space model based on reflection and transmission measurements is proposed for accurate permittivity determination of low-loss and electrically thin (W < /4 where W is the sample thickness and is the wavelength) samples. Unlike previous free-space methods studied in the literature, the proposed new model generalizes previous free-space models by considering the case that transmitting and receiving antenna regions have different reflection and transmission properties. Such a model, valid at any frequency or over the entire frequency band, considers different antenna characteristics or different cable connections in addition to unequal and non-zero reflection properties due to impedance mismatches and ringing effects between antennas and the sample. An objective function constructed on this model is derived. This function is shown to be free-from error network terms of transmitting and receiving antenna regions and not dependent on reference-plane transformation factors. The effect of sample misalignment is considered to evaluate its effect on permittivity determination by the proposed extraction method. Free-space measurements at X-band (8. 2–12. 4 GHz) of low-loss Rogers 4350B sample (W 1. 52 mm) and FR-4 sample (W 1. 60 mm) were then carried out to validate our method.

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Cite This Study

Hasar et al. (2026) studied this question.

synapsesocial.com/papers/6a13e83b0e02ee3982d32e57https://doi.org/10.1038/s41598-026-50597-w
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1A Derivative Approach to Permittivity Extraction from Free-Space S-Parameters Measurements2026
  2. 2Determination of complex permittivity of a thin low-loss dielectric sample using state-space approach from waveguide measurements2026
  3. 3Advancements in FR4 dielectric analysis: Free space approach and measurement validation2024 · 10 citations
  4. 4Thickness-Independent Reference-Plane-Invariant Noniterative Permittivity Extraction of Low-Loss Solid Dielectric Samples by Combined Use of Frequency- and Time-Domain Analyses2024 · 9 citations
  5. 5An improved waveguide method for accurate complex permittivity measurement of medium/high-loss material2024 · 5 citations