Title :
Fast Transient Thermal Analysis of Gold Nanoparticles in Tissue-Like Medium
Author :
Liu, Changhong ; Li, B.Q. ; Mi, Chunting Chris
Author_Institution :
Shanghai Jiao Tong Univ., Shanghai, China
Abstract :
Gold-nanoparticle-based hyperthermia has attracted considerable attention in the recent ten years in cancer treatment. In hyperthermia-based cancer treatment, in order to produce efficient thermal therapy yet without excessive heat damage to human body, besides the steady-state thermal condition, the transient thermal response is of vital importance. As part of theoretical research associated with nanoparticle-mediated hyperthermia therapy for cancer treatment, the transient heat transfer process of laser interacting with gold nanoparticle in tissue-like medium is investigated. Within the framework of dual-phase-lag (DPL) model, this paper focuses on the microscopic heat transfer performance of a gold nanoparticle in a surrounding medium. A semianalytical solution of 1-D nonhomogenous DPL equation in spherical coordinates is presented for a heat transfer process with a constant laser heat source and a short-pulsed laser heating source. Results show that the transient temperature calculated by DPL model greatly exceeds that predicted by the classical diffusion model, with either a constant source or a pulsed source. This phenomenon is mainly attributed by the phase lag of heat flux in the surrounding tissue.
Keywords :
cancer; gold; hyperthermia; laser applications in medicine; nanobiotechnology; nanoparticles; patient treatment; Au; cancer treatment; dual-phase-lag model; fast transient thermal analysis; gold nanoparticles; heat damage; hyperthermia; microscopic heat transfer; thermal therapy; tissue like medium; Cancer; Gold; Heat transfer; Heat treatment; Hyperthermia; Laser modes; Medical treatment; Nanoparticles; Page description languages; Transient analysis; Diffusion model; dual-phase-lag (DPL) model; gold nanoparticle; transient thermal response; Animals; Computer Simulation; Connective Tissue; Energy Transfer; Gold; Humans; Hyperthermia, Induced; Lasers; Models, Biological; Nanoparticles; Temperature; Thermal Conductivity;
Journal_Title :
NanoBioscience, IEEE Transactions on
DOI :
10.1109/TNB.2009.2028885