Detection of Green-Synthesized Fe3O4/ Chitosan Using Spin Valve GMR Sensor with Wheatstone Bridge Circuit

Shania Garcia, Ni’matil Mabarroh, Rona Cuana, H. Ardiyanti, N. Istiqomah, E. Suharyadi
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Abstract

Detection of magnetic nanoparticles (MNPS) label is essential to determine the performance of giant magnetoresistance (GMR) sensors in biosensing technology. This research identifies the potency of green-synthesized Fe3O4/Chitosan on GMR sensors, which has never been explored. MNPS label was synthesized by the coprecipitation method based on the green synthesis route because cost-effective, non-toxic, and reduces waste production. Chitosan is considered the best polymer candidate as a stabilizer of Fe3O4 because they are biodegradable, biocompatible, and hydrophilic. The characteristics of Fe3O4/Chitosan with several concentrations and the effect on sensor signals were investigated. Measurement of Fe3O4/Chitosan using a spin-valve based sensor with a Ta (2nm)/Ir20Mn80(10nm)/Co90Fe10(3nm)/Co84Fe10B4(10nm)/Ta (5nm) structure on Si/SiO2 substrate. Fe3O4/Chitosan has a spherical shape with an inverse spinel cubic structure. The crystallite sizes of Fe3O4/Chitosan (1:1) and Fe3O4/Chitosan (2:1) are 7.9 and 7.5 nm, respectively. Fourier transforms infrared spectra of Fe3O4/Chitosan showed the NH2 bending at 1560 cm−1, C-O-C stretching at 1386 cm−1, and Fe-O stretching at 580 cm−1. The results indicate that chitosan effectively coated the surface of Fe3O4. The sensitivity of the GMR sensor increased to 0.04 mV/mg/mL and 0.05 mV/mg/mL, in the case of Fe3O4/Chitosan (1:1) and Fe3O4/Chitosan (2:1). The increase in the sensitivity was caused by the decrease in diamagnetic material composition, crystallite size and the increase in the saturation magnetization of Fe3O4/Chitosan. Green-synthesized Fe3O4/Chitosan can be detected by GMR sensor by providing a low external magnetic field within the 60s and reach ruthless performance as a magnetic label to be applied to biosensors application in the future.
利用带有惠斯通电桥电路的自旋阀 GMR 传感器检测绿色合成的 Fe3O4/ 壳聚糖
检测磁性纳米粒子(MNPS)标签对于确定生物传感技术中巨磁电阻(GMR)传感器的性能至关重要。本研究发现了绿色合成的 Fe3O4/Chitosan 在 GMR 传感器上的有效性,而这一点从未被探索过。MNPS 标签是通过共沉淀法合成的,该方法基于绿色合成路线,具有成本低、无毒、减少废物产生等优点。壳聚糖具有生物降解性、生物相容性和亲水性,因此被认为是作为 Fe3O4 稳定剂的最佳聚合物。研究了几种浓度的 Fe3O4/壳聚糖的特性及其对传感器信号的影响。在 Si/SiO2 基质上使用基于自旋阀的传感器测量 Fe3O4/壳聚糖,该传感器具有 Ta(2nm)/Ir20Mn80(10nm)/Co90Fe10(3nm)/Co84Fe10B4(10nm)/Ta(5nm)结构。Fe3O4/Chitosan 呈球形,具有反尖晶石立方结构。Fe3O4/Chitosan (1:1) 和 Fe3O4/Chitosan (2:1) 的晶粒大小分别为 7.9 和 7.5 nm。傅立叶变换红外光谱显示,Fe3O4/壳聚糖的 NH2 弯曲位于 1560 cm-1,C-O-C 伸展位于 1386 cm-1,Fe-O 伸展位于 580 cm-1。结果表明壳聚糖有效地包覆了 Fe3O4 表面。在 Fe3O4/壳聚糖(1:1)和 Fe3O4/壳聚糖(2:1)的情况下,GMR 传感器的灵敏度分别提高到 0.04 mV/mg/mL 和 0.05 mV/mg/mL。灵敏度的增加是由于二磁性材料成分的减少、晶体尺寸的减小以及 Fe3O4/Chitosan 饱和磁化的增加。绿色合成的 Fe3O4/Chitosan 可在 60 秒内通过 GMR 传感器提供的低外加磁场进行检测,作为一种磁性标签性能优异,未来可应用于生物传感器。
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