TY - JOUR
T1 - Subharmonic Response of Encapsulated Microbubbles
T2 - Conditions for Existence and Amplification
AU - Kimmel, Eitan
AU - Krasovitski, Boris
AU - Hoogi, Assaf
AU - Razansky, Daniel
AU - Adam, Dan
N1 - Funding Information:
This research was supported by a grant from the Star Foundation (Michigan) and by the Center for Absorption in Science, Ministry of Immigrant Absorption.
PY - 2007/11
Y1 - 2007/11
N2 - The response of encapsulated microbubbles at half the ultrasound insonation frequency, termed subharmonic response, may have potential applications in diagnosis and therapy. The subharmonic signal, emitted by Definity™ microbubble cloud sonicated by ultrasound was studied theoretically and experimentally. The size distribution of the microbubbles was optically analyzed and resonance frequency of 2.7 MHz was determined. An asymptotic model has been developed that generates subharmonic response of a single and of a cloud of bubbles of various sizes. Threshold conditions for existence and the intensity of the subharmonic signal are predicted to depend on microbubbles size distribution and shell properties, as well as on the driving field frequency and pressure. Thin tubes filled with Definity™ solution were insonated at acoustic pressures from 100 to 630 kPa. The intensities of the emitted fundamental harmonics and subharmonics were measured. At frequency 5.5MHz, twice the resonance frequency, the subharmonic signals were observed only at pressures greater than 190 kPa. The subharmonic to fundamental harmonics intensity ratio was within -12 to -1 dB. The experimental results showed good correlation with the theoretical results in the range of validity of the asymptotic solution, thus supporting the model assumptions. (E-mail: [email protected]).
AB - The response of encapsulated microbubbles at half the ultrasound insonation frequency, termed subharmonic response, may have potential applications in diagnosis and therapy. The subharmonic signal, emitted by Definity™ microbubble cloud sonicated by ultrasound was studied theoretically and experimentally. The size distribution of the microbubbles was optically analyzed and resonance frequency of 2.7 MHz was determined. An asymptotic model has been developed that generates subharmonic response of a single and of a cloud of bubbles of various sizes. Threshold conditions for existence and the intensity of the subharmonic signal are predicted to depend on microbubbles size distribution and shell properties, as well as on the driving field frequency and pressure. Thin tubes filled with Definity™ solution were insonated at acoustic pressures from 100 to 630 kPa. The intensities of the emitted fundamental harmonics and subharmonics were measured. At frequency 5.5MHz, twice the resonance frequency, the subharmonic signals were observed only at pressures greater than 190 kPa. The subharmonic to fundamental harmonics intensity ratio was within -12 to -1 dB. The experimental results showed good correlation with the theoretical results in the range of validity of the asymptotic solution, thus supporting the model assumptions. (E-mail: [email protected]).
KW - Definity
KW - Microbubbles
KW - Subharmonic response
KW - Subharmonic threshold
KW - Ultrasound
UR - http://www.scopus.com/inward/record.url?scp=35448950445&partnerID=8YFLogxK
U2 - 10.1016/j.ultrasmedbio.2007.05.011
DO - 10.1016/j.ultrasmedbio.2007.05.011
M3 - Article
C2 - 17720301
AN - SCOPUS:35448950445
SN - 0301-5629
VL - 33
SP - 1767
EP - 1776
JO - Ultrasound in Medicine and Biology
JF - Ultrasound in Medicine and Biology
IS - 11
ER -