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Performance Validation of a Planar Hall Resistance Biosensor through Beta-Amyloid Biomarker

机译:通过β-淀粉样生物标志物的平面霍尔电阻生物传感器的性能验证

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摘要

Magnetic sensors have great potential for biomedical applications, particularly, detection of magnetically-labeled biomolecules and cells. On the basis of the advantage of the planar Hall effect sensor, which consists of improved thermal stability as compared with other magnetic sensors, we have designed a portable biosensor platform that can detect magnetic labels without applying any external magnetic field. The trilayer sensor, with a composition of Ta (5 nm)/NiFe (10 nm)/Cu ( = 0 nm~1.2 nm)/IrMn (10 nm)/Ta (5 nm), was deposited on a silicon wafer using photolithography and a sputtering system, where the optimized sensor sensitivity was 6 μV/(Oe∙mA). The detection of the magnetic label was done by comparing the signals obtained in first harmonic AC mode (1f mode) using an external magnetic field and in the second harmonic AC mode (2f mode) with a self-field generated by current passing through the sensor. In addition, a technique for the β-amyloid biomarker-based antibody-antigen sandwich model was demonstrated for the detection of a series of concentrations of magnetic labels using the self-field mode method, where the signal-to-noise ratio (SNR) was high. The generated self-field was enough to detect an immobilized magnetic tag without an additional external magnetic field. Hence, it could be possible to reduce the device size to use the point-of-care testing using a portable circuit system.
机译:磁传感器在生物医学应用中具有巨大的潜力,特别是在检测磁性标记的生物分子和细胞方面。基于平面霍尔效应传感器的优势,与其他磁性传感器相比,该传感器具有改善的热稳定性,我们设计了一种便携式生物传感器平台,该平台可在不施加任何外部磁场的情况下检测磁性标签。用光刻法在硅晶片上沉积三层传感器,其成分为Ta(5 nm)/ NiFe(10 nm)/ Cu(= 0 nm〜1.2 nm)/ IrMn(10 nm)/ Ta(5 nm)。溅射系统,传感器的最佳灵敏度为6μV/(Oe∙mA)。磁性标签的检测是通过将使用外部磁场的一次谐波交流模式(1f模式)和二次谐波交流模式(2f模式)中获得的信号与通过传感器的电流产生的自磁场进行比较来完成的。 。此外,还展示了一种基于β-淀粉样生物标记的抗体-抗原夹心模型的技术,该技术可使用自磁场模式方法检测一系列浓度的磁性标记,其中信噪比(SNR)很高。产生的自场足以检测固定的磁性标签,而无需额外的外部磁场。因此,可以减小设备尺寸,以使用通过便携式电路系统进行的即时检验。

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