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Two dimensional, electronic particle tracking in liquids with a graphene-based magnetic sensor array

机译:二维电子粒子跟踪液体与石墨烯磁传感器数组

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摘要

The investigation and control of liquid flow at the nanometer scale is a key area of applied research with high relevance to physics, chemistry, and biology. We introduce a method and a device that allows the spatial resolution of liquid flow by integrating an array of graphene-based magnetic (Hall) sensors that is used for tracking the movement of magnetic nanoparticles immersed in a liquid under investigation. With a novel device concept based on standard integration processes and experimentally verified material parameters, we numerically simulate the performance of a single sensor pixel, as well as the whole sensor array, for tracking magnetic nanoparticles having typical properties. The results demonstrate that the device enables (a) the detection of individual nanoparticles in the liquid with high accuracy and (b) the reconstruction of a particle's flow-driven trajectory across the integrated sensor array with sub-pixel precision as a function of time, in what we call the "Magnetic nanoparticle velocimetry" technique. Since the method does not rely on optical detection, potential lab-on-chip applications include particle tracking and flow analysis in opaque media at the sub-micron scale.
机译:的调查和控制液体流动纳米尺度是一个关键领域的应用研究相关性高的物理、化学和生物学。一个设备,允许的空间分辨率液体流动通过集成的数组石墨烯磁(大厅)传感器用于跟踪磁的运动纳米颗粒沉浸在液体中调查。在标准流程和集成实验验证了材料参数,我们数值模拟单一的性能传感器像素,以及整个传感器阵列,跟踪磁性纳米颗粒典型的属性。设备支持(a)的检测个人高的纳米颗粒在液体中准确性和(b)的重建粒子的flow-driven轨迹集成的亚像素精度的传感器阵列作为时间的函数,在我们所说的“磁纳米粒子测速”技术。因为方法不依靠光学检测、实验室芯片的应用潜力包括粒子跟踪和流分析不透明的媒体在亚微米范围内。

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