This paper presents an implantable polymer/metal alloy thin film structure for localized post-operative treatment of breast cancer. A combination of experiments and models is used to study the temperature changes due to Joule heating by patterned metallic thin films embedded in poly-dimethylsiloxane. The heat conduction within the device and the surrounding normal/cancerous breast tissue is modeled with three-dimensional finite element method (FEM). The FEM simulations are used to explore the potential effects of device geometry and Joule heating on the temperature distribution and lesion (thermal dose). The FEM model is validated using a gel model that mimics biological media. The predictions are also compared to prior results from in vitro studies and relevant in vivo studies in the literature. The implications of the results are discussed for the potential application of polymer/metal thin film structures in hyperthermic treatment of cancer.
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28 April 2015
Research Article|
April 22 2015
Implantable polymer/metal thin film structures for the localized treatment of cancer by Joule heating
Kwabena Kan-Dapaah;
Kwabena Kan-Dapaah
1Department of Materials Science and Engineering,
African University of Science and Technology
, Abuja-FCT, Nigeria
2Department of Biomedical Engineering,
University of Ghana
, Accra, Ghana
3Department of Civil and Environmental Engineering,
Worcester Polytechnic Institute
, Worcester, Massachusetts 01609, USA
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Nima Rahbar;
Nima Rahbar
a)
2Department of Biomedical Engineering,
University of Ghana
, Accra, Ghana
3Department of Civil and Environmental Engineering,
Worcester Polytechnic Institute
, Worcester, Massachusetts 01609, USA
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Christian Theriault;
Christian Theriault
4Department of Mechanical and Aerospace Engineering,
Princeton University
, Princeton, New Jersey 08544, USA
and Princeton Institute for Science and Technology of Materials (PRISM), Princeton University
, Princeton, New Jersey 08544, USA
3Department of Civil and Environmental Engineering,
Worcester Polytechnic Institute
, Worcester, Massachusetts 01609, USA
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Wole Soboyejo
Wole Soboyejo
1Department of Materials Science and Engineering,
African University of Science and Technology
, Abuja-FCT, Nigeria
4Department of Mechanical and Aerospace Engineering,
Princeton University
, Princeton, New Jersey 08544, USA
and Princeton Institute for Science and Technology of Materials (PRISM), Princeton University
, Princeton, New Jersey 08544, USA
3Department of Civil and Environmental Engineering,
Worcester Polytechnic Institute
, Worcester, Massachusetts 01609, USA
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a)
Author to whom correspondence should be addressed. Electronic mail: nrahbar@wpi.edu
J. Appl. Phys. 117, 165301 (2015)
Article history
Received:
March 03 2015
Accepted:
April 02 2015
Citation
Kwabena Kan-Dapaah, Nima Rahbar, Christian Theriault, Wole Soboyejo; Implantable polymer/metal thin film structures for the localized treatment of cancer by Joule heating. J. Appl. Phys. 28 April 2015; 117 (16): 165301. https://doi.org/10.1063/1.4918271
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