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Multi-channel scanning SQUID microscopy.

机译:多通道扫描SQUID显微镜。

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摘要

I designed, fabricated, assembled, and tested an 8-channel high- Tc scanning SQUID system. I started by modifying an existing single-channel 77 K high-Tc scanning SQUID microscope into a multi-channel system with the goal of reducing the scanning time and improving the spatial resolution by increasing the signal-to-noise ratio S/N. I modified the window assembly, SQUID chip assembly, cold-finger, and vacuum connector. The main concerns for the multi-channel system design were to reduce interaction between channels, to optimize the use of the inside space of the dewar for more than 50 shielded wires, and to achieve good spatial resolution.;In the completed system, I obtained the transfer function and the dynamic range (phimax ∼ 11phi0) for each SQUID. At 1kHz, the slew rate is about 3000 phi0/s. I also found that the white noise level varies from 5 muphi0/Hz1/2 to 20 muphi 0/Hz1/2 depending on the SQUID. A new data acquisition program was written that triggered on position and collects data from up to eight SQUIDS. To generate a single image from the multichannel system, I calibrated the tilt of the xy-stage and z-stage manually, rearranged the scanned data by cutting overlapping parts, and determined the applied field by multiplying by the mutual inductance matrix. I found that I could reduce scanning time and improve the image quality by doing so.;In addition, I have analyzed and observed the effect of position noise on magnetic field images and used these results to find the position noise in my scanning SQUID microscope. My analysis reveals the relationship between spatial resolution and position noise and that my system was dominated by position noise under typical operating conditions. I found that the smaller the sensor-sample separation, the greater the effect of position noise is on the total effective magnetic field noise and on spatial resolution. By averaging several scans, I found that I could reduce position noise and that the spatial resolution can be improved somewhat.;Using a current injection technique with an x-SQUID, and (i) subtracting high-frequency data from low-frequency data, or (ii) taking the derivative of magnetic field Bx with respect to x, I show that I can find defects in superconducting MRI wires.
机译:我设计,制造,组装并测试了8通道高Tc扫描SQUID系统。我首先将现有的单通道77 K高Tc扫描SQUID显微镜修改为多通道系统,目的是通过提高信噪比S / N来减少扫描时间并提高空间分辨率。我修改了窗户组件,SQUID芯片组件,冷指和真空连接器。多通道系统设计的主要关注点是减少通道之间的相互作用,优化杜瓦瓶内部空间对50根以上屏蔽线的利用,并获得良好的空间分辨率。在完整的系统中,我获得了每个SQUID的传递函数和动态范围(phimax〜11phi0)。在1kHz时,压摆率约为3000 phi0 / s。我还发现,根据SQUID的不同,白噪声电平从5 muphi0 / Hz1 / 2到20 muphi 0 / Hz1 / 2不等。编写了一个新的数据采集程序,该程序在位置上触发并从多达八个SQUIDS收集数据。为了从多通道系统生成单个图像,我手动校准了xy级和z级的倾斜度,通过切割重叠部分重新排列了扫描数据,并通过乘以互感矩阵确定了施加的磁场。我发现这样做可以减少扫描时间并改善图像质量。此外,我已经分析并观察了位置噪声对磁场图像的影响,并使用这些结果在我的扫描SQUID显微镜中找到了位置噪声。我的分析揭示了空间分辨率与位置噪声之间的关系,并且我的系统在典型操作条件下受位置噪声的支配。我发现,传感器与样本之间的距离越小,位置噪声对总有效磁场噪声和空间分辨率的影响就越大。通过平均几次扫描,我发现我可以减少位置噪声,并且可以在某种程度上提高空间分辨率。使用电流注入技术和x-SQUID,(i)从低频数据中减去高频数据,或(ii)取磁场Bx相对于x的导数,表明我可以在超导MRI导线中发现缺陷。

著录项

  • 作者

    Lee, Su-Young.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Physics Condensed Matter.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 277 p.
  • 总页数 277
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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