Potential Sources of Errors in Measuring and Evaluating the Specific Loss Power of Magnetic Nanoparticles in an Alternating Magnetic Field

被引:58
作者
Wang, Shu-Yi [1 ]
Huang, Shujuan [1 ]
Borca-Tasciuc, Diana-Andra [1 ]
机构
[1] Rensselaer Polytech Inst, Dept Mech Aerosp & Nucl Engn, Troy, NY 12180 USA
基金
美国国家科学基金会;
关键词
Hyperthermia; magnetic nanoparticles; specific absorption rate; specific loss power; ABSORPTION RATE; HYPERTHERMIA TREATMENT; FLUID HYPERTHERMIA; THERAPY; PARTICLES;
D O I
10.1109/TMAG.2012.2224648
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Heat-generating magnetic nanoparticles suspensions are being explored in research and clinical settings as hyperthermia treatment for cancer or as adjuvant in established cancer therapies. In these applications it is essential to use low nanoparticle dosage to prevent any potential side effects including those associated with their accumulation in liver or spleen. Hence, developing particles with superior heating properties continues to remain an active area of research. Specific loss power (SLP), also referred to as specific absorption rate (SAR), represents the power dissipation per unit mass of magnetic nanoparticles in alternating magnetic fields. Accurate measurement of SLP is the key for understanding the parameters that control the heat generation rate, which is required to optimize these systems. However, at presents there are no standards for performing SLP measurements and no accepted calibration materials, making it difficult to compare the performance of various systems reported in literature. Previous work from this group discussed the effect of sample volume and geometry on the SLP data accuracy. In this study, additional analysis and experiments are carried out to investigate the effect of the power dissipation rate, the magnetic properties and the method for temperature slope calculation on the accuracy of the reported power density. Results indicate that when the same heating time is used, the volume at which heat losses become negligible decreases with decreasing sample heating rate. Furthermore, it is shown that for calculating initial temperature slope, a larger error occurs with a longer heating time and higher power level regardless of the curve fitting methods, hence, when power density or heating time increases, a higher order curve fitting (e. g., 2nd polynomial and exponential) is more desirable. In addition, when the magnetization of a nanoparticle suspension is low, the SLP is independent of the sample geometry.
引用
收藏
页码:255 / 262
页数:8
相关论文
共 30 条
[11]   Biocompatible high-moment FeCo-Au magnetic nanoparticles for magnetic hyperthermia treatment optimization [J].
Kline, Timothy L. ;
Xu, Yun-Hao ;
Jing, Ying ;
Wang, Jian-Ping .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2009, 321 (10) :1525-1528
[12]   Biomedical Nanomagnetics: A Spin Through Possibilities in Imaging, Diagnostics, and Therapy [J].
Krishnan, Kannan M. .
IEEE TRANSACTIONS ON MAGNETICS, 2010, 46 (07) :2523-2558
[13]   Integrated genetic analysis microsystems [J].
Lagally, ET ;
Mathies, RA .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2004, 37 (23) :R245-R261
[14]   Size dependence of specific power absorption of Fe3O4 particles in AC magnetic field [J].
Ma, M ;
Wu, Y ;
Zhou, H ;
Sun, YK ;
Zhang, Y ;
Gu, N .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2004, 268 (1-2) :33-39
[15]   Intracranial thermotherapy using magnetic nanoparticles combined with external beam radiotherapy: Results of a feasibility study on patients with glioblastoma multiforme [J].
Maier-Hauff, Klaus ;
Rothe, Ronny ;
Scholz, Regina ;
Gneveckow, Uwe ;
Wust, Peter ;
Thiesen, Burghard ;
Feussner, Annelie ;
von Deimling, Andreas ;
Waldoefner, Norbert ;
Felix, Roland ;
Jordan, Andreas .
JOURNAL OF NEURO-ONCOLOGY, 2007, 81 (01) :53-60
[16]   Efficacy and safety of intratumoral thermotherapy using magnetic iron-oxide nanoparticles combined with external beam radiotherapy on patients with recurrent glioblastoma multiforme [J].
Maier-Hauff, Klaus ;
Ulrich, Frank ;
Nestler, Dirk ;
Niehoff, Hendrik ;
Wust, Peter ;
Thiesen, Burghard ;
Orawa, Helmut ;
Budach, Volker ;
Jordan, Andreas .
JOURNAL OF NEURO-ONCOLOGY, 2011, 103 (02) :317-324
[17]   Synthesis of Hydrophilic Superparamagnetic Magnetite Nanoparticles via Thermal Decomposition of Fe(acac)3 in 80 Vol% TREG+20 Vol% TREM [J].
Maity, Dipak ;
Pradhan, Pallab ;
Chandrasekharan, Prashant ;
Kale, S. N. ;
Shuter, Borys ;
Bahadur, Dhirendra ;
Feng, Si-Shen ;
Xue, Jun-Min ;
Ding, Jun .
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2011, 11 (03) :2730-2734
[18]   Magnetic nanoparticle design for medical diagnosis and therapy [J].
Mornet, S ;
Vasseur, S ;
Grasset, F ;
Duguet, E .
JOURNAL OF MATERIALS CHEMISTRY, 2004, 14 (14) :2161-2175
[19]   Accurate measurement of the specific absorption rate using a suitable adiabatic magnetothermal setup [J].
Natividad, Eva ;
Castro, Miguel ;
Mediano, Arturo .
APPLIED PHYSICS LETTERS, 2008, 92 (09)
[20]   STANDARD REFERENCE DATA FOR THE THERMAL-CONDUCTIVITY OF WATER [J].
RAMIRES, MLV ;
DECASTRO, CAN ;
NAGASAKA, Y ;
NAGASHIMA, A ;
ASSAEL, MJ ;
WAKEHAM, WA .
JOURNAL OF PHYSICAL AND CHEMICAL REFERENCE DATA, 1995, 24 (03) :1377-1381