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Artificial Anisotropy in Ge2Sb2Te5 Thin Films after Femtosecond Laser Irradiation
Authors:Aleksandr Kolchin  Dmitrii Shuleiko  Mikhail Martyshov  Aleksandra Efimova  Leonid Golovan  Denis Presnov  Tatiana Kunkel  Victoriia Glukhenkaya  Petr Lazarenko  Pavel Kashkarov  Stanislav Zabotnov  Sergey Kozyukhin
Abstract:Ge2Sb2Te5 (GST225) looks to be a promising material for rewritable memory devices due to its relatively easy processing and high optical and electrophysical contrast for the crystalline and amorphous phases. In the present work, we combined the possibilities of crystallization and anisotropic structures fabrication using femtosecond laser treatment at the 1250 nm wavelength of 200 nm thin amorphous GST225 films on silicon oxide/silicon substrates. A raster treatment mode and photoexcited surface plasmon polariton generation allowed us to produce mutually orthogonal periodic structures, such as scanline tracks (the period is 120 ± 10 μm) and laser-induced gratings (the period is 1100 ± 50 nm), respectively. Alternating crystalline and amorphous phases at the irradiated surfaces were revealed according to Raman spectroscopy and optical microscopy studies for both types of structures. Such periodic modulation leads to artificial optical and electrophysical anisotropy. Reflectance spectra in the near infrared range differ for various polarizations of probing light, and this mainly results from the presence of laser-induced periodic surface structures. On the other hand, the scanline tracks cause strong conductivity anisotropy for dc measurements in the temperature range of 200–400 K. The obtained results are promising for designing new GST225-based memory devices in which anisotropy may promote increasing the information recording density.
Keywords:GST225   femtosecond direct laser writing   Raman spectroscopy   conductivity anisotropy   infrared spectroscopy
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