Near-field microwave imaging of inhomogeneous KFeSe: separation of topographic and electric features
arXiv:1506.03911 · doi:10.1063/1.4922459
Abstract
It is important for modern scanning microwave microscopes to overcome the effect of the surface roughness. Here, we report microwave conductivity imaging of the phase-separated iron chalcogenide KFeSe (, -), in which electric conductivity-induced contrast is distinguished from topography-induced contrast using a combination of a scanning tunneling microscope and a scanning microwave microscope (STM-SMM). We observed the characteristic modulation of the local electric property that originates from the mesoscopic phase separation of the metallic and semiconducting phases in two different scanning modes: constant current (CC) mode and constant (CQ) mode. In particular, CQ scanning is useful because we obtain a qualitative image in which the topographic contrast is largely eliminated without degradation of the spatial resolution.
References in corpus (3)
- AFM-compatible near-field scanning microwave microscope with separated excitation and sensing probes
- Evolution of precipitate morphology during heat treatment and its implications for the superconductivity in KxFe1.6+ySe2 single crystals
- Nanometer-Scale Materials Contrast Imaging with a Near-Field Microwave Microscope