Magnetically Multiplexed Heating of Single Domain Nanoparticles

M. G. Christiansen, Ritchie Chen, P. Anikeeva
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引用次数: 38

Abstract

Selective hysteretic heating of multiple collocated sets of single domain magnetic nanoparticles (SDMNPs) by alternating magnetic fields (AMFs) may offer a useful tool for biomedical applications. The possibility of magnetothermal multiplexing has not yet been realized, in part due to prevalent use of linear response theory to model SDMNP heating in AMFs. Predictive successes of dynamic hysteresis (DH), a more generalized model for heat dissipation by SDMNPs, are observed experimentally with detailed calorimetry measurements performed at varied AMF amplitudes and frequencies. The DH model suggests that specific driving conditions play an underappreciated role in determining optimal material selection strategies for high heat dissipation. Motivated by this observation, magnetothermal multiplexing is theoretically predicted and empirically demonstrated for the first time by selecting SDMNPs with properties that suggest optimal hysteretic heat dissipation at dissimilar AMF driving conditions. This form of multiplexing could effectively create multiple channels for minimally invasive biological signaling applications.
单畴纳米颗粒的磁多路加热
交变磁场(AMFs)对多组配置的单畴磁性纳米颗粒(SDMNPs)进行选择性滞后加热,可能为生物医学应用提供一种有用的工具。磁热复用的可能性尚未实现,部分原因是由于普遍使用线性响应理论来模拟AMFs中的SDMNP加热。动态滞后(DH)是一种更广义的SDMNPs散热模型,在不同的AMF振幅和频率下进行了详细的量热测量,实验观察到动态滞后(DH)的预测成功。DH模型表明,特定的驾驶条件在确定高散热的最佳材料选择策略方面发挥了未被充分认识的作用。在这一观察结果的推动下,通过选择在不同AMF驱动条件下具有最佳滞后散热特性的SDMNPs,首次从理论上预测了磁热复用,并通过经验证明了这一点。这种形式的多路复用可以有效地为微创生物信号应用创建多个通道。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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