Literature DB >> 24386534

FEM numerical model study of heating in magnetic nanoparticles.

John A Pearce1, Jason R Cook1, P Jack Hoopes2, Andrew Giustini2.   

Abstract

Electromagnetic heating of nanoparticles is complicated by the extremely short thermal relaxation time constants and difficulty of coupling sufficient power into the particles to achieve desired temperatures. Magnetic field heating by the hysteresis loop mechanism at frequencies between about 100 and 300 kHz has proven to be an effective mechanism in magnetic nanoparticles. Experiments at 2.45 GHz show that Fe3O4 magnetite nanoparticle dispersions in the range of 1012 to 1013 NP/mL also heat substantially at this frequency. An FEM numerical model study was undertaken to estimate the order of magnitude of volume power density, Qgen (W m-3) required to achieve significant heating in evenly dispersed and aggregated clusters of nanoparticles. The FEM models were computed using Comsol Multiphysics; consequently the models were confined to continuum formulations and did not include film nano-dimension heat transfer effects at the nanoparticle surface. As an example, the models indicate that for a single 36 nm diameter particle at an equivalent dispersion of 1013 NP/mL located within one control volume (1.0 × 10-19 m3) of a capillary vessel a power density in the neighborhood of 1017 (W m-3) is required to achieve a steady state particle temperature of 52 °C - the total power coupled to the particle is 2.44 μW. As a uniformly distributed particle cluster moves farther from the capillary the required power density decreases markedly. Finally, the tendency for particles in vivo to cluster together at separation distances much less than those of the uniform distribution further reduces the required power density.

Entities:  

Keywords:  FEM numerical models; Ferromagnetic nanoparticles; Nanoparticle heating

Year:  2011        PMID: 24386534      PMCID: PMC3877304          DOI: 10.1117/12.875288

Source DB:  PubMed          Journal:  Proc SPIE Int Soc Opt Eng        ISSN: 0277-786X


  6 in total

1.  Is intracellular hyperthermia superior to extracellular hyperthermia in the thermal sense?

Authors:  Y Rabin
Journal:  Int J Hyperthermia       Date:  2002 May-Jun       Impact factor: 3.914

2.  Ferrimagnetic nanoparticles enhance microwave heating for tumor hyperthermia therapy.

Authors:  John A Pearce; Jason R Cook; Stanislav Y Emelianov
Journal:  Annu Int Conf IEEE Eng Med Biol Soc       Date:  2010

3.  Assessment of intratumor non-antibody directed iron oxide nanoparticle hyperthermia cancer therapy and antibody directed IONP uptake in murine and human cells.

Authors:  Pj Hoopes; Ja Tate; Ja Ogden; Rr Strawbridge; Sn Fiering; Aa Petryk; Sm Cassim; Aj Giustini; E Demidenko; R Ivkov; S Barry; P Chinn; A Foreman
Journal:  Proc SPIE Int Soc Opt Eng       Date:  2009-02-23

4.  Induction of apoptotic cell DNA fragmentation in human cells after treatment with hyperthermia.

Authors:  J J Fairbairn; M W Khan; K J Ward; B W Loveridge; D W Fairbairn; K L O'Neill
Journal:  Cancer Lett       Date:  1995-03-02       Impact factor: 8.679

5.  Hyperthermia induces apoptosis in thymocytes.

Authors:  K S Sellins; J J Cohen
Journal:  Radiat Res       Date:  1991-04       Impact factor: 2.841

6.  Differential thermal sensitivity of tumour and normal tissue microvascular response during hyperthermia.

Authors:  S L Brown; J W Hunt; R P Hill
Journal:  Int J Hyperthermia       Date:  1992 Jul-Aug       Impact factor: 3.914

  6 in total
  2 in total

1.  Magnetic Heating of Nanoparticles: The Importance of Particle Clustering to Achieve Therapeutic Temperatures.

Authors:  John Pearce; Andrew Giustini; Robert Stigliano; P Jack Hoopes
Journal:  J Nanotechnol Eng Med       Date:  2013-07-16

Review 2.  Physical mechanism and modeling of heat generation and transfer in magnetic fluid hyperthermia through Néelian and Brownian relaxation: a review.

Authors:  E Y K Ng; S D Kumar
Journal:  Biomed Eng Online       Date:  2017-03-23       Impact factor: 2.819

  2 in total

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