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用于有源纳米电子器件局部表征的开尔文探针力显微镜。

Kelvin probe force microscopy for local characterisation of active nanoelectronic devices.

作者信息

Wagner Tino, Beyer Hannes, Reissner Patrick, Mensch Philipp, Riel Heike, Gotsmann Bernd, Stemmer Andreas

机构信息

Nanotechnology Group, ETH Zürich, Säumerstrasse 4, 8803 Rüschlikon, Switzerland.

IBM Research - Zurich, Säumerstrasse 4, 8803 Rüschlikon, Switzerland.

出版信息

Beilstein J Nanotechnol. 2015 Nov 23;6:2193-206. doi: 10.3762/bjnano.6.225. eCollection 2015.

Abstract

Frequency modulated Kelvin probe force microscopy (FM-KFM) is the method of choice for high resolution measurements of local surface potentials, yet on coarse topographic structures most researchers revert to amplitude modulated lift-mode techniques for better stability. This approach inevitably translates into lower lateral resolution and pronounced capacitive averaging of the locally measured contact potential difference. Furthermore, local changes in the strength of the electrostatic interaction between tip and surface easily lead to topography crosstalk seen in the surface potential. To take full advantage of the superior resolution of FM-KFM while maintaining robust topography feedback and minimal crosstalk, we introduce a novel FM-KFM controller based on a Kalman filter and direct demodulation of sidebands. We discuss the origin of sidebands in FM-KFM irrespective of the cantilever quality factor and how direct sideband demodulation enables robust amplitude modulated topography feedback. Finally, we demonstrate our single-scan FM-KFM technique on an active nanoelectronic device consisting of a 70 nm diameter InAs nanowire contacted by a pair of 120 nm thick electrodes.

摘要

调频开尔文探针力显微镜(FM-KFM)是用于高分辨率测量局部表面电位的首选方法,然而在粗糙的地形结构上,大多数研究人员会采用调幅提升模式技术以获得更好的稳定性。这种方法不可避免地会导致横向分辨率降低以及局部测量的接触电位差出现明显的电容平均效应。此外,尖端与表面之间静电相互作用强度的局部变化很容易导致在表面电位中出现地形串扰。为了在保持强大的地形反馈和最小串扰的同时充分利用FM-KFM的卓越分辨率,我们引入了一种基于卡尔曼滤波器和边带直接解调的新型FM-KFM控制器。我们讨论了FM-KFM中边带的起源,而不考虑悬臂品质因数,以及直接边带解调如何实现强大的调幅地形反馈。最后,我们在一个由一对120纳米厚电极接触的直径70纳米的砷化铟纳米线组成的有源纳米电子器件上展示了我们的单扫描FM-KFM技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/833e/4685916/44fcfe7898d1/Beilstein_J_Nanotechnol-06-2193-g002.jpg

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