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Highly tunable perpendicularly magnetized synthetic antiferromagnets for biotechnology applications

机译:用于生物技术应用的高度可调的垂直磁化合成反铁磁体

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摘要

Magnetic micro and nanoparticles are increasingly used in biotechnological applications due to the ability to control their behavior through an externally applied field. We demonstrate the fabrication of particles made from ultrathin perpendicularly magnetized CoFeB/Pt layers with antiferromagnetic interlayer coupling. The particles are characterized by zero moment at remanence, low susceptibility at low fields, and a large saturated moment created by the stacking of the basic coupled bilayer motif. We demonstrate the transfer of magnetic properties from thin films to lithographically defined 2 μm particles which have been lifted off into solution. We simulate the minimum energy state of a synthetic antiferromagnetic bilayer system that is free to rotate in an applied field and show that the low field susceptibility of the system is equal to the magnetic hard axis followed by a sharp switch to full magnetization as the field is increased. This agrees with the experimental results and explains the behaviour of the particles in solution.
机译:磁性微颗粒和纳米颗粒由于能够通过外部应用领域控制其行为而越来越多地用于生物技术领域。我们演示了由超薄垂直磁化CoFeB / Pt层与反铁磁层间耦合制成的颗粒的制造。颗粒的特征是剩磁矩为零,低场的磁化率低,并且由于基本耦合的双层基序的堆积而产生了较大的饱和矩。我们证明了磁性从薄膜到光刻定义的2μm颗粒的转移,这些颗粒已被提升到溶液中。我们模拟了在应用场中自由旋转的合成反铁磁双层系统的最小能量状态,并表明该系统的低场磁化率等于硬磁轴,随后随着场强急剧切换到完全磁化增加。这与实验结果一致,并解释了溶液中颗粒的行为。

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