Surface Resistance Imaging with a Scanning Near-Field Microwave Microscope
arXiv:cond-mat/9712142 · doi:10.1063/1.120020
Abstract
We describe near-field imaging of sample sheet resistance via frequency shifts in a resonant coaxial scanning microwave microscope. The frequency shifts are related to local sample properties, such as surface resistance and dielectric constant. We use a feedback circuit to track a given resonant frequency, allowing measurements with a sensitivity to frequency shifts as small as one parts in 50000 for a 30 ms sampling time. The frequency shifts can be converted to sheet resistance based on a simple model of the system.
6 pages, 3 figures; for color versions of figures see www.csr.umd.edu/research/hifreq/micr_microscopy.html
Cited by in corpus (15)
- Quantitative Imaging of Sheet Resistance with a Scanning Near-Field Microwave Microscope
- A 17 GHz Molecular Rectifier
- Imaging of Microwave Permittivity, Tunability, and Damage Recovery in (Ba,Sr)TiO3 Thin Films
- Quantitative imaging of dielectric permittivity and tunability with a near-field scanning microwave microscope
- Effect of tip-geometry on contrast and spatial-resolution of the Near-Field Microwave Microscope
- Nanometer-Scale Materials Contrast Imaging with a Near-Field Microwave Microscope
- Broadband dielectric microwave microscopy on m length scales
- Quantitative topographic imaging using a near-field scanning microwave microscope
- Microwave Near-Field Imaging of Electric Fields in a Superconducting Microstrip Resonator
- Near-Field Scanning Microwave Microscopy: Measuring Local Microwave Properties and Electric Field Distributions
- Superconducting Material Diagnostics using a Scanning Near-Field Microwave Microscope
- Microwave Nonlinearity and Photoresponse of Superconducting Resonators with Columnar Defect Micro-Channels
- Microwave Microscope Studies of Trapped Vortex Dynamics in Superconductors
- Frequency Following Imaging of Electric Fields from Resonant Superconducting Devices using a Scanning Near-Field Microwave Microscope
- Low-temperature-compatible tunneling-current-assisted scanning microwave microscope utilizing a rigid coaxial resonator