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Ultra-senstitive magnesium oxide-based magnetic tunnel junctions for spintronic immunoassay.

机译:超灵敏的基于氧化镁的磁性隧道结,用于自旋电子学免疫分析。

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摘要

We systematically studied the spin-dependent tunnel properties of MgO-based magnetic tunnel junctions (MTJs). Utilizing the spin-coherent tunnel effects of the MgO (001) insulating layer, we have achieved large tunneling magnetoresistance (TMR) ratios (above 200%) at room temperature in optimized MTJ devices. We have shown that the MgO surface roughness, and therefore device magnetoresistance, depends strongly on the pressure of the Ar sputtering gas. We have investigated the characteristics of MgO-MTJs, including their dependence on barrier thickness and bias voltage, their thermal stability and resistance to electrostatic discharge (ESD). We have also fabricated MgO-MTJs with a synthetic antiferromagnetic (SAF) free layer, which exhibits a coherent, single-domain-like switching. Our data show that MgO-MTJs have superior properties for low-field magnetic field sensing applications as compared with conventional AlOx-based MTJs.;Based on this giant TMR effect, we designed and developed ultra-sensitive magnetic tunnel junction (MTJ) sensors and sensor arrays for biomagnetic sensing applications. By integrating MTJ sensor arrays into microfluidic channels, we were able to detect the presence of moving, micron-size superparamagnetic beads in real time. We have obtained an average signal of 80 mV for a single Dynal M-280 bead, with a signal-to-noise ratio (SNR) of 24 dB. We also biologically treated the MTJ sensor array surfaces, and demonstrated the detection of 2.5 muM single strand target DNA labeled with 16-nm-diameter Fe3O 4 nanoparticles (NPs). Our measured signal of 72 muV indicates that the current system's detection limit for analyte DNA is better than 150 nM. We also demonstrated the detection of live HeLa cells labeled with Fe 3O4 nanoparticles, with an effective signal of 8 mV and a signal-to-noise ratio of 6 dB. These results represent an important milestone in the development of spintronics immunoassay technology: the detection of a single live cell labeled with magnetic nanoparticles. All the data show conclusively that MTJ sensors and sensor arrays are very promising candidates for future applications involving the accurate detection and identification of biomolecules tagged with magnetic labels.
机译:我们系统地研究了基于MgO的磁性隧道结(MTJ)的自旋相关隧道特性。利用MgO(001)绝缘层的自旋相干隧道效应,我们在室温下使用优化的MTJ器件实现了较大的隧穿磁阻(TMR)比(超过200%)。我们已经表明,MgO的表面粗糙度以及器件的磁阻在很大程度上取决于Ar溅射气体的压力。我们研究了MgO-MTJ的特性,包括它们对势垒厚度和偏置电压的依赖性,它们的热稳定性和抗静电放电(ESD)的能力。我们还制造了具有合成反铁磁(SAF)自由层的MgO-MTJ,该自由层表现出相干的,类似单畴的开关。我们的数据表明,与传统的基于AlOx的MTJ相比,MgO-MTJ在低场磁场感测应用中具有出色的性能。基于这种巨大的TMR效应,我们设计和开发了超灵敏的磁隧道结(MTJ)传感器,用于生物磁传感应用的传感器阵列。通过将MTJ传感器阵列集成到微流体通道中,我们能够实时检测运动的,微米级的超顺磁珠的存在。对于单个Dynal M-280磁珠,我们获得了80 mV的平均信号,信噪比(SNR)为24 dB。我们还对MTJ传感器阵列表面进行了生物学处理,并证明了用直径16 nm的Fe3O 4纳米颗粒(NPs)标记的2.5μM单链靶DNA的检测。我们测得的72 muV信号表明,当前系统对分析物DNA的检出限优于150 nM。我们还演示了检测带有Fe 3O4纳米粒子标记的活HeLa细胞的方法,有效信号为8 mV,信噪比为6 dB。这些结果代表了自旋电子学免疫测定技术发展中的一个重要里程碑:检测磁性纳米粒子标记的单个活细胞。所有数据最终表明,MTJ传感器和传感器阵列是未来应用的非常有前途的候选者,涉及精确检测和鉴定带有磁性标签的生物分子。

著录项

  • 作者

    Shen, Weifeng.;

  • 作者单位

    Brown University.;

  • 授予单位 Brown University.;
  • 学科 Engineering Biomedical.;Physics Condensed Matter.;Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 311 p.
  • 总页数 311
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;无线电电子学、电信技术;
  • 关键词

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