近场微波技术的原子力显微镜电子自旋共振成像

F.X. Li, M. Tabib-Azar, J. Adin Mann
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引用次数: 2

摘要

当外加磁场存在时,未配对电子具有两个量子态。两个量子态之间的能隙随外加磁场强度线性增加。当微波光能恰好等于电子能隙时,电子自旋共振(ESR)达到峰值。先前的研究利用3.7 GHz的倏逝微波磁偶极子探针在红宝石表面展示了空间分辨的电子自旋共振。检测到的电子自旋中心的最小数量在20,000到30,000之间。本文提出了一种将原子力显微镜与近场微波探针相结合的ESR检测新技术。利用更小的探针尖端,空间受限磁场有望提高ESR检测的灵敏度。原子力显微镜和近场微波探针技术都是非破坏性和非侵入性的测量技术。因此,这项新技术将成为许多应用的有力工具,包括检测材料缺陷口袋,检测生物组织中的自由基,以及分析生物膜的结构和动力学。我们的最终目标是在空间上探测单个电子自旋中心,并在未来的自旋电子器件中使用单个电子作为一个量子比特。
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Electron spin resonance imaging with AFM using near field microwave techniques
An unpaired electron possess two quantum states when external magnetic field presents. The energy gap between two quantum states increases linearly with the applied external magnetic field strength. The electron spin resonance (ESR) peaks at the moment that the microwave wave photo energy is exactly equal to the electron energy gap. Previous researches demonstrated spatially resolved electron spin resonances using evanescent microwave magnetic-dipole probe at 3.7 GHz on the ruby surface. The minimum number of detected electron spin centers was in the range of 20,000 to 30,000. This paper is to present a new ESR detection technique by integrating the atomic force microscopy (AFM) with near field microwave probe. With smaller probe tips, the spatially confined magnetic field is expected to increase the sensitivity of ESR detections. Both AFM and near field microwave probe techniques are non-destructive and non-invasive measurement techniques. Thus, the new technique will be a powerful instrument for many applications that include the detection of material defect pockets, detecting free radicals in biological tissues, and the analysis of structure and dynamics of biomembranes. Our ultimate objective is to spatially detect single electron spin center and use the single electron as one quantum bit in future spintronic devices.
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