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Magnetothermoacoustics from magnetic nanoparticles by short bursting or frequency chirped alternating magnetic field: A theoretical feasibility analysis

机译:短脉冲或频率frequency交变磁场产生的磁性纳米粒子的磁热声:理论可行性分析

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摘要

>Purpose: To propose an alternative method of thermoacoustic wave generation based on heating of magnetic nanoparticles (MNPs) using alternating magnetic field (AMF).>Methods: The feasibility of thermoacoustic wave generation from MNPs by applying a short-burst of AMF or a frequency-modulated AMF is theoretically analyzed. As the relaxation of MNPs is strongly dependent upon the amplitude and frequency of AMF, either an amplitude modulated, fixed frequency AMF (termed time-domain AMF) or a frequency modulated, constant amplitude AMF (termed frequency-domain AMF) will result in time-varying heat dissipation from MNPs, which has the potential to generate thermoacoustic waves. Following Rosensweig's model of specific power loss of MNPs in a steady-state AMF, the time-resolved heat dissipations of MNPs of superparamagnetic size when exposed to a short bursting of AMF and/or to a linearly frequency chirped AMF are derived, and the resulted acoustic propagation is presented. Based on experimentally measured temperature-rise characteristics of a superparamagnetic iron-oxide nanoparticle (SPION) matrix in a steady-state AMF of various frequencies, the heat dissipations of the SPION under time-domain and frequency-domain AMF configurations that could have practical utility for thermoacoustic wave generation are estimated.>Results: The initial rates of the temperature-rise of the SPION matrix were measured at an iron-weight concentration of 0.8 mg/ml and an AMF frequency of 88.8 kHz to 1.105 MHz. The measured initial rates of temperature-rise were modeled by Rosensweig's theory, and projected to 10 MHz AMF frequency, at which a 1 μs bursting corresponding to a 1.55 mm axial resolution of acoustic detection could contain 10 complete cycles of AMF oscillation and the power dissipation is approximately 84 times of that at 1 MHz. Exposing the SPION matrix to a 1 μs bursting of AMF at 10 MHz frequency and 100 Oe field intensity would produce a volumetric heat dissipation of 7.7 μJ/cm3 over the microsecond duration of the AMF burst. If the SPION matrix is exposed to a 1 ms long AMF train at 100 Oe field intensity that chirps linearly from 1 to 10 MHz, the volumetric heat dissipation produced over each 2π phase change of the AMF oscillation is estimated to increase from 0.15 to 1.1 μJ/cm3 within the millisecond duration of the chirping of AMF.>Conclusions: The heat dissipations upon SPION (∼1 mg/ml iron-weight concentration) by a 1 μs bursting of 100 Oe AMF at 10 MHz and a 1 ms train of 100 Oe AMF that chirps linearly from 1 to 10 MHz were estimated to determine the potential of thermal-acoustic wave generation. Although thermoacoustic wave generation from MNPs by time- or frequency-domain AMF applications is predicted, the experimental generation of such a wave remains challenging.
机译:>目的:提出一种利用交流磁场(AMF)加热磁性纳米颗粒(MNP)的热声波产生方法。>方法:从理论上分析了通过应用AMF短脉冲或频率调制AMF产生的MNPs。由于MNP的弛豫高度依赖于AMF的幅度和频率,因此会在时间上产生调幅的固定频率AMF(称为时域AMF)或调频的恒定幅度AMF(称为频域AMF)。 MNP的各种散热,可能会产生热声波。根据Rosensweig的稳态AMF中MNP的特定功率损耗模型,推导了当暴露于AMF的短时猝发和/或线性频率线性调频的AMF时,超顺磁性尺寸的MNP的时间分辨散热量,并且得出了结果提出了声传播。基于实验测量的各种频率的稳态AMF中超顺磁性氧化铁纳米粒子(SPION)基质的温升特性,该SPION在时域和频域AMF配置下的散热可能具有实用性>结果:在铁重量浓度为0.8 mg / ml,AMF频率为88.8 kHz至1.105的条件下,测量了SPION基质的温度上升初始速率。兆赫根据Rosensweig的理论对测得的初始温度上升速率进行建模,并将其预测为10 MHz AMF频率,在该频率下,与声学检测的轴向分辨率1.55 mm相对应的1μs突发可能包含10个完整的AMF振荡和功耗循环大约是1 MHz时的84倍。将SPION矩阵在10 MHz频率和100 Oe场强下暴露于1μs的AMF突发中,将在AMF突发的微秒持续时间内产生7.7μJ/ cm 3 的体积散热。如果将SPION矩阵暴露在100 Oe场强度的1 ms长的AMF序列中,该场强从1到10 MHz线性chi,则估计在AMF振荡的每个2π相变上产生的体积散热量将从0.15增加到1.1μJ / cm 3 在AMF鸣叫的毫秒时间内。>结论: SPION产生的热耗散(铁重量浓度约为1 mg / ml)由1μs突发估算10 MHz处的100 Oe AMF的频率和1 ms至1 MHz线性chi的100 Oe AMF的1 ms串以确定热声波产生的潜力。尽管预测了通过时域或频域AMF应用从MNP产生热声波,但这种波的实验产生仍然具有挑战性。

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