Modeling and simulation of a magnonic gas sensor to detected diseases in human breath

M. Pozo-Gómez, J.D. Aguilera-Martín, P. de la Presa, C. Cruz, P. Marín, D. Matatagui, M. C. Horrillo
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Abstract

A theoretical study of the interaction between magnetostatic surface spin waves (MSWs) and magnetic nanoparticles (MNPs) is presented. The propagation of the MSW occurs on an yttrium iron garnet (YIG) thin film, and the MNPs are encapsulated in a tube. The operation of the sensor is based on the fact that a gas interacting with the nanostructures produces a change in their magnetization, and this, in turn, produces a measurable change in MSW propagation. The gas sensor structure is studied and characterized theoretically, through simulations. These simulations are also used in order to optimize the device through changes in the geometry, reaching sensitivities of 2 ppm in the magnetization of the sensitive material.
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磁振气体传感器在人体呼吸疾病检测中的建模与仿真
本文从理论上研究了静磁表面自旋波(MSWs)与磁性纳米粒子(MNPs)之间的相互作用。生活垃圾的传播发生在钇铁石榴石(YIG)薄膜上,MNPs被封装在管中。传感器的工作是基于这样一个事实,即气体与纳米结构相互作用会产生磁化的变化,而这反过来又会产生可测量的MSW传播变化。通过仿真,对气体传感器的结构进行了理论研究和表征。这些模拟也用于通过改变几何形状来优化器件,在敏感材料的磁化强度下达到2ppm的灵敏度。
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