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February 14, 2026The Journal of Chemical Physics0 citations

Onset of near constant loss under high AC voltage

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RCR. Casalini

Key Points

  • The aim is to explore how dielectric loss behaves under high AC voltage conditions in polymers, particularly investigating the nearly constant loss (NCL).
  • Conducted broadband dielectric measurements on thin polymer films under high AC voltage.
  • Examined temperature effects on dielectric loss below and above the glass transition temperature.
  • Utilized theoretical frameworks from low voltage analysis to interpret results.
  • Observed a non-linear increase in dielectric loss linked to temperature and frequency.
  • Identified that NCL increases below the glass transition, while DC conductivity also contributes above it.
  • Confirmed that high AC voltage results align with NCL behavior seen at low AC voltage and high frequencies.

Abstract

Broadband dielectric measurements at high AC voltage on thin polymer films show a temperature dependent non-linear increase in the dielectric loss. This non-linear behavior is due to the non-linear dependence of a frequency independent loss, namely, the nearly constant loss (NCL). Below the glass transition of the polymer, only the increase in the NCL contributes, while above the glass transition temperature, also the DC conductivity contributes to the increase in the dielectric loss. We point out that the NCL observed at high AC voltages is consistent with the NCL observed for low AC voltage and very high frequencies in dielectric materials. Using the same theoretical framework used to interpret the NCL at low voltages, we provide an interpretation of the observed non-linear behavior. This behavior is important since it can provide a new way to characterize NCL in materials where it is too small to be measured and, thus, help expand our understanding of this phenomenon. From a technological point of view, this unexpected increase in the AC losses needs to be considered in the selection of dielectric materials for systems operating at large AC voltages. Further understanding of the nature of the NCL would be useful in material design for large AC voltage applications.

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Cite This Study

R. Casalini (2026) studied this question.

synapsesocial.com/papers/699011b32ccff479cfe58a51https://doi.org/10.1063/5.0317026
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