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Giant Magnetoresistive Biosensor Array for Detecting Magnetorelaxation

机译:巨磁阻生物传感器阵列,用于检测磁松弛

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摘要

In this paper, a time-domain magnetorelaxometry biosensing scheme is presented using giant magnetoresistive (GMR) sensors to measure the fast relaxation response of superparamagnetic magnetic nanoparticles (MNPs) in a pulsed magnetic field. The system consists of an 8 × 10 GMR sensor array, a Helmholtz coil, an electromagnet driver, and an integrator-based analog front-end needed to capture the fast relaxation dynamics of MNPs. A custom designed electromagnet driver and Helmholtz coil improve the switch-off speed to >5 Oe/μs, limiting the dead zone time to <10 μs, and thus enables the system to monitor fast relaxation processes of 30 nm MNPs. A magnetic correlated double sampling technique is proposed to reduce sensor-to-sensor variation by 99.98% while also reducing temperature drift, circuit offset, and nonlinearity below the noise level. An optimum integration time is calculated and experimentally verified to maximize the SNR. Experiments with dried MNPs have shown successful relaxation detection, and immunoassay experiments have demonstrated their binding kinetics.
机译:在本文中,提出了一种时域磁弹性测定生物传感方案,该方案使用巨型磁阻(GMR)传感器测量脉冲磁场中超顺磁磁性纳米颗粒(MNP)的快速弛豫响应。该系统由一个8×10 GMR传感器阵列,一个亥姆霍兹线圈,一个电磁驱动器和一个基于积分器的模拟前端组成,以捕获MNP的快速弛豫动力学。定制设计的电磁驱动器和亥姆霍兹线圈将关断速度提高到> 5 Oe /μs,将死区时间限制在<10μs,从而使系统能够监视30 nm MNP的快速弛豫过程。提出了一种磁相关双采样技术,以将传感器之间的差异减少99.98%,同时还可以将温度漂移,电路偏移和非线性降低到噪声水平以下。计算最佳积分时间并通过实验验证,以使SNR达到最大。干燥的MNP的实验显示成功的松弛检测,免疫测定实验证明了其结合动力学。

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