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Far-Infrared Near-Field Optical Imaging and Kelvin Probe Force Microscopy of Laser-Crystallized and -Amorphized Phase Change Material Ge<sub>3</sub>Sb<sub>2</sub>Te<sub>6</sub>

Julian Barnett, Lukas Wehmeier, Andreas Heßler, Martin Lewin, Julian Pries, Matthias Wuttig, J. Michael Klopf, Susanne C. Kehr, Lukas M. Eng, Thomas Taubner

2021Nano Letters23 citationsDOI

Abstract

Chalcogenide phase change materials reversibly switch between non-volatile states with vastly different optical properties, enabling novel active nanophotonic devices. However, a fundamental understanding of their laser-switching behavior is lacking and the resulting local optical properties are unclear at the nanoscale. Here, we combine infrared scattering-type scanning near-field optical microscopy (SNOM) and Kelvin probe force microscopy (KPFM) to investigate four states of laser-switched Ge3Sb2Te6 (as-deposited amorphous, crystallized, reamorphized, and recrystallized) with nanometer lateral resolution. We find SNOM to be especially sensitive to differences between crystalline and amorphous states, while KPFM has higher sensitivity to changes introduced by melt-quenching. Using illumination from a free-electron laser, we use the higher sensitivity to free charge carriers of far-infrared (THz) SNOM compared to mid-infrared SNOM and find evidence that the local conductivity of crystalline states depends on the switching process. This insight into the local switching of optical properties is essential for developing active nanophotonic devices.

Topics & Concepts

Materials scienceKelvin probe force microscopeNear-field scanning optical microscopeNanophotonicsInfraredInfrared microscopyOptoelectronicsMicroscopyLaserAmorphous solidOptical microscopeOpticsChalcogenideScanning probe microscopyScanning electron microscopeChemistryPhysicsOrganic chemistryComposite materialPhase-change materials and chalcogenidesNonlinear Optical Materials StudiesQuantum Dots Synthesis And Properties