DocumentCode :
107292
Title :
Dielectric Characterization by Microwave Cavity Perturbation Corrected for Nonuniform Fields
Author :
Orloff, Nathan D. ; Obrzut, Jan ; Long, Christian J. ; Lam, Tak-Wah ; Kabos, P. ; Novotny, David R. ; Booth, James C. ; Liddle, J. Alexander
Author_Institution :
Nat. Inst. of Stand. & Technol. (NIST), Gaithersburg, MD, USA
Volume :
62
Issue :
9
fYear :
2014
fDate :
Sept. 2014
Firstpage :
2149
Lastpage :
2159
Abstract :
Nonuniform fields decrease the accuracy of dielectric characterization by microwave cavity perturbation. These fields are due to the slot in the cavity through which the sample is inserted and the boundary between the sample and the metallic walls inside of the cavity. To address this problem, we measured the natural frequency and damping ratio of a resonant cavity as a sample is inserted into the rectangular cavity. We found that for a range of cavity filling fractions, a linear regression on the natural frequency and damping ratio versus the effective volume fraction of the sample in the cavity could be used to extract the complex permittivity of the sample. We verified our technique by measuring a known quartz substrate and comparing the results to finite-element simulations. When compared to the conventional technique, we found a significant improvement in the accuracy for our samples and measurement setup. We confirmed our technique on two lossy samples: a neat stoichiometric mixture bisphenol A epoxy resin and one containing a mass fraction of 3.5% multi-walled carbon nanotubes (MWCNTs). At the TE103 mode (7.31 GHz), the permittivity and loss tangent of the epoxy were measured to be εr=2.93±0.11 and tanδ = 0.028±0.002, respectively. The epoxy with a mass fraction of 3.5% MWCNTs had a permittivity of εr=8.01±0.48 and loss tangent of tanδ = 0.137±0.010.
Keywords :
carbon nanotubes; cavity resonators; damping; finite element analysis; permittivity; quartz; regression analysis; resins; C; bisphenol A epoxy resin; cavity filling fractions; damping ratio; dielectric characterization; finite element simulations; linear regression; metallic walls; microwave cavity perturbation; multiwalled carbon nanotubes; nonuniform fields; resonant cavity; Cavity resonators; Damping; Frequency measurement; Microwave measurement; Permittivity; Permittivity measurement; Resonant frequency; Bisphenol A epoxy; metrology; microwave; multi-walled carbon nanotubes (MWCNTs); nanocomposites; noncontact; nondestructive; resonator;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/TMTT.2014.2336775
Filename :
6862934
Link To Document :
بازگشت