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Original

Enhancement in treatment planning for magnetic nanoparticle hyperthermia: Optimization of the heat absorption pattern

, & , PhD
Pages 309-321 | Received 08 Oct 2008, Accepted 06 Feb 2009, Published online: 21 Jul 2009

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Crossref
Suriyanto, E. Y. K. Ng & S. D. Kumar. (2017) Physical mechanism and modeling of heat generation and transfer in magnetic fluid hyperthermia through Néelian and Brownian relaxation: a review. BioMedical Engineering OnLine 16:1.
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Crossref
Kara L. Watts & Joshua M. Stern. 2017. Management of Urologic Cancer. Management of Urologic Cancer 213 231 .
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Crossref
Iordana Astefanoaei, Horia Chiriac & Alexandru Stancu. (2017) Thermal performance of Fe-Cr-Nb-B systems in magnetic hyperthermia. Journal of Applied Physics 121:10.
Crossref
Iordana Astefanoaei & Alexandru Stancu. A temperature analysis in magnetic hyperthermia. A temperature analysis in magnetic hyperthermia.
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Crossref
J.C. Umavathi, Odelu Ojjela & K. Vajravelu. (2017) Numerical analysis of natural convective flow and heat transfer of nanofluids in a vertical rectangular duct using Darcy-Forchheimer-Brinkman model. International Journal of Thermal Sciences 111, pages 511-524.
Crossref
Chau-Yi Chou & Kuen-Tsann Chen. (2016) Performance Evaluations of Different Parallel Programming Paradigms for Pennes Bioheat Equations and Navier-Stokes Equations. Performance Evaluations of Different Parallel Programming Paradigms for Pennes Bioheat Equations and Navier-Stokes Equations.
Pin-Chieh Huang, Paritosh Pande, Adeel Ahmad, Marina Marjanovic, Darold R. Spillman, Boris Odintsov & Stephen A. Boppart. (2016) Magnetomotive Optical Coherence Elastography for Magnetic Hyperthermia Dosimetry Based on Dynamic Tissue Biomechanics. IEEE Journal of Selected Topics in Quantum Electronics 22:4, pages 104-119.
Crossref
W. Aadinath, Triroopa Ghosh & C. Anandharamakrishnan. (2016) Multimodal magnetic nano-carriers for cancer treatment: Challenges and advancements. Journal of Magnetism and Magnetic Materials 401, pages 1159-1172.
Crossref
Ruy Freitas Reis, Felipe dos Santos Loureiro & Marcelo Lobosco. (2016) 3D numerical simulations on GPUs of hyperthermia with nanoparticles by a nonlinear bioheat model. Journal of Computational and Applied Mathematics 295, pages 35-47.
Crossref
Madhappan Santha Moorthy, Yunok Oh, Subramanian Bharathiraja, Panchanathan Manivasagan, Thenmozhi Rajarathinam, Bian Jang, Thi Tuong Vy Phan, Hyukjin Jang & Junghwan Oh. (2016) Synthesis of amine-polyglycidol functionalised Fe 3 O 4 @SiO 2 nanocomposites for magnetic hyperthermia, pH-responsive drug delivery, and bioimaging applications . RSC Advances 6:111, pages 110444-110453.
Crossref
Heng Liu, Jun Zhang, Xiao Chen, Xue-Song Du, Jin-Long Zhang, Gang Liu & Wei-Guo Zhang. (2016) Application of iron oxide nanoparticles in glioma imaging and therapy: from bench to bedside. Nanoscale 8:15, pages 7808-7826.
Crossref
Zhenpeng Qin, Saravana Kumar Balasubramanian, Willem F. Wolkers, John A. Pearce & John C. Bischof. (2014) Correlated Parameter Fit of Arrhenius Model for Thermal Denaturation of Proteins and Cells. Annals of Biomedical Engineering 42:12, pages 2392-2404.
Crossref
Silvio Dutz & Rudolf Hergt. (2014) Magnetic particle hyperthermia—a promising tumour therapy?. Nanotechnology 25:45, pages 452001.
Crossref
Iordana Astefanoaei, Ioan Dumitru, Horia Chiriac & Alexandru Stancu. (2014) Use of the Fe–Cr–Nb–B Systems With Low Curie Temperature as Mediators in Magnetic Hyperthermia. IEEE Transactions on Magnetics 50:11, pages 1-4.
Crossref
R F Reis, F S Loureiro & M Lobosco. (2014) A Parallel 2D Numerical Simulation of Tumor Cells Necrosis by Local Hyperthermia. Journal of Physics: Conference Series 490, pages 012138.
Crossref
Maxim A. Shevtsov, Ludmila Y. Yakovleva, Boris P. Nikolaev, Yaroslav Y. Marchenko, Anatolii V. Dobrodumov, Kirill V. Onokhin, Yana S. Onokhina, Sergey A. Selkov, Anastasiia L. Mikhrina, Irina V. Guzhova, Marina G. Martynova, Olga A. Bystrova, Alexander M. Ischenko & Boris A. Margulis. (2014) Tumor targeting using magnetic nanoparticle Hsp70 conjugate in a model of C6 glioma. Neuro-Oncology 16:1, pages 38-49.
Crossref
Soham Ghosh, Debabrata Das Gupta, Suman Chakraborty & Sarit K. Das. (2013) Superparamagnetic nanoparticle assisted hyperthermia and cooling protocol for optimum damage of internal carcinoma using computational predictive model. Heat and Mass Transfer 49:9, pages 1217-1229.
Crossref
Luca Giovanni Campana, Paolo Di Barba, Fabrizio Dughiero, Carlo Riccardo Rossi & Elisabetta Sieni. (2013) Optimal Needle Positioning for Electrochemotherapy: A Constrained Multiobjective Strategy. IEEE Transactions on Magnetics 49:5, pages 2141-2144.
Crossref
W Minkowycz, E Sparrow & J AbrahamRonghui Ma, Di Su & Liang Zhu. 2012. Nanoparticle Heat Transfer and Fluid Flow. Nanoparticle Heat Transfer and Fluid Flow 69 96 .
N. Manuchehrabadi, A. Attaluri, H. Cai, R. Edziah, E. Lalanne, C. Bieberich, R. Ma, A. M. Johnson & L. Zhu. (2012) MicroCT Imaging and In Vivo Temperature Elevations in Implanted Prostatic Tumors in Laser Photothermal Therapy Using Gold Nanorods. Journal of Nanotechnology in Engineering and Medicine 3:2.
Crossref
Paolo Di Barba, Fabrizio Dughiero & Elisabetta Sieni. (2012) Synthesizing Distributions of Magnetic Nanoparticles for Clinical Hyperthermia. IEEE Transactions on Magnetics 48:2, pages 263-266.
Crossref
Paolo Di Barba, Fabrizio Dughiero & Elisabetta Sieni. (2012) Field synthesis for the optimal treatment planning in Magnetic Fluid Hyperthermia. Archives of Electrical Engineering 61:1, pages 57-67.
Crossref
Yulei Tai, Li Wang, Guangqing Yan, Jin‐min Gao, Haojie Yu & Lei Zhang. (2011) Recent research progress on the preparation and application of magnetic nanospheres. Polymer International 60:7, pages 976-994.
Crossref
William H. Gmeiner. 2007. Nanotechnologies for the Life Sciences. Nanotechnologies for the Life Sciences.
Anilchandra Attaluri, Ronghui Ma & Liang Zhu. (2011) Using MicroCT Imaging Technique to Quantify Heat Generation Distribution Induced by Magnetic Nanoparticles for Cancer Treatments. Journal of Heat Transfer 133:1.
Crossref
Nataliya Chekina, Daniel Horák, Pavla Jendelová, Miroslava Trchová, Milan J. Beneš, Martin Hrubý, Vít Herynek, Karolina Turnovcová & Eva Syková. (2011) Fluorescent magnetic nanoparticles for biomedical applications. Journal of Materials Chemistry 21:21, pages 7630.
Crossref
Liang Zhu. (2010) Recent Developments in Biotransport. Journal of Thermal Science and Engineering Applications 2:4.
Crossref
A. V. Kuznetsov & D. A. Nield. (2010) The Onset of Double-Diffusive Nanofluid Convection in a Layer of a Saturated Porous Medium. Transport in Porous Media 85:3, pages 941-951.
Crossref
Jong-Ki Kim, Seung-Jun Seo, Ki-Hong Kim, Tae-Jeong Kim, Myung-Hwan Chung, Kye-Ryung Kim & Tae-Keun Yang. (2010) Therapeutic application of metallic nanoparticles combined with particle-induced x-ray emission effect. Nanotechnology 21:42, pages 425102.
Crossref
Di Su, Ronghui Ma, Maher Salloum & Liang Zhu. (2010) Multi-scale study of nanoparticle transport and deposition in tissues during an injection process. Medical & Biological Engineering & Computing 48:9, pages 853-863.
Crossref
Sandra Scharfe, Thomas F. Fässler, Alexander Eychmüller, Uri Banin, Stefanie Dehnen, Andreas Eichhöfer, John F. Corrigan, Olaf Fuhr, Dieter Fenske, Günter Schmid, Galyna Krylova, Maryna I. Bodnarchuk, Ulrich I. Tromsdorf, Elena V. Shevchenko, Dmitri V. Talapin & Horst Weller. 2010. Nanoparticles. Nanoparticles 49 310 .
Xufei Wang, Jintian Tang & Liqun Shi. (2010) Induction Heating of Magnetic Fluids for Hyperthermia Treatment. IEEE Transactions on Magnetics 46:4, pages 1043-1051.
Crossref
Kaiming Shen, Yunfei Yan, Wei Gao & lixian Li. (2022) Numerical Simulation of the Effect of Injection Sites Arrangement on the Thermal Ablation in the Magnetic Fluid Hyperthermia. SSRN Electronic Journal.
Crossref

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