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Search for "magnetic hyperthermia" in Full Text gives 28 result(s) in Beilstein Journal of Nanotechnology.

Influence of surface-modified maghemite nanoparticles on in vitro survival of human stem cells

  • Michal Babič,
  • Daniel Horák,
  • Lyubov L. Lukash,
  • Tetiana A. Ruban,
  • Yurii N. Kolomiets,
  • Svitlana P. Shpylova and
  • Oksana A. Grypych

Beilstein J. Nanotechnol. 2014, 5, 1732–1737, doi:10.3762/bjnano.5.183

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  • , magnetic hyperthermia or magnetofection. Transmission electron micrographs of (a) non-coated, (b) D-mannose- and (c) PDMAAm-coated γ-Fe2O3 nanoparticles. Effect of non-coated, D-mannose- and PDMAAm-coated γ-Fe2O3 on the in vitro survival of 4BL human cells at different concentrations of particles in the
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Published 08 Oct 2014

Carbon dioxide hydrogenation to aromatic hydrocarbons by using an iron/iron oxide nanocatalyst

  • Hongwang Wang,
  • Jim Hodgson,
  • Tej B. Shrestha,
  • Prem S. Thapa,
  • David Moore,
  • Xiaorong Wu,
  • Myles Ikenberry,
  • Deryl L. Troyer,
  • Donghai Wang,
  • Keith L. Hohn and
  • Stefan H. Bossmann

Beilstein J. Nanotechnol. 2014, 5, 760–769, doi:10.3762/bjnano.5.88

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  • been developed [34][35][36][37][38][39][40][41]. The application of such materials in cancer diagnosis and cancer treatment, such as MRI and magnetic hyperthermia are intensively studied [42][43][44]. The use of iron-containing nanomaterials as catalysts for the methanol oxidation reaction [45], and
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Published 02 Jun 2014

Magnetic-Fe/Fe3O4-nanoparticle-bound SN38 as carboxylesterase-cleavable prodrug for the delivery to tumors within monocytes/macrophages

  • Hongwang Wang,
  • Tej B. Shrestha,
  • Matthew T. Basel,
  • Raj K. Dani,
  • Gwi-Moon Seo,
  • Sivasai Balivada,
  • Marla M. Pyle,
  • Heidy Prock,
  • Olga B. Koper,
  • Prem S. Thapa,
  • David Moore,
  • Ping Li,
  • Viktor Chikan,
  • Deryl L. Troyer and
  • Stefan H. Bossmann

Beilstein J. Nanotechnol. 2012, 3, 444–455, doi:10.3762/bjnano.3.51

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  • the payload of tumor-homing double-stable RAW264.7 cells; (2) Release of chemotherapeutic SN38 at the cancer site by means of the self-containing Tet-On Advanced system; (3) Provide localized magnetic hyperthermia to enhance the cancer treatment, both by killing cancer cells through magnetic heating
  • , biocompatibility, and potential for targeted accumulation at the tumor site, ultra-small magnetic nanoparticles are the prime candidates for application in magnetic hyperthermia [32][33][34]. We have developed a magnetic core/shell Fe/Fe3O4 nanoparticle platform, which can generate substantial heat within a
  • Brownian. In Neel relaxation, the nanoparticles do not move, but the direction of magnetization inside the particles rotates. In Brownian relaxation, the whole particle rotates against resistance due to the viscosity of the surrounding medium. For the localized magnetic hyperthermia application using our
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Published 13 Jun 2012
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