Literature DB >> 28541033

Synthesis and Screening of Phase Change Chalcogenide Thin Film Materials for Data Storage.

Samuel Guerin1, Brian Hayden1, Daniel W Hewak, Chris Vian1.   

Abstract

A combinatorial synthetic methodology based on evaporation sources under an ultrahigh vacuum has been used to directly synthesize compositional gradient thin film libraries of the amorphous phases of GeSbTe alloys at room temperature over a wide compositional range. An optical screen is described that allows rapid parallel mapping of the amorphous-to-crystalline phase transition temperature and optical contrast associated with the phase change on such libraries. The results are shown to be consistent with the literature for compositions where published data are available along the Sb2Te3-GeTe tie line. The results reveal a minimum in the crystallization temperature along the Sb2Te3-Ge2Te3 tie line, and the method is able to resolve subsequent cubic-to-hexagonal phase transitions in the GST crystalline phase. HT-XRD has been used to map the phases at sequentially higher temperatures, and the results are reconciled with the literature and trends in crystallization temperatures. The results clearly delineate compositions that crystallize to pure GST phases and those that cocrystallize Te. High-throughput measurement of the resistivity of the amorphous and crystalline phases has allowed the compositional and structural correlation of the resistivity contrast associated with the amorphous-to-crystalline transition, which range from 5-to-8 orders of magnitude for the compositions investigated. The results are discussed in terms of the compromises in the selection of these materials for phase change memory applications and the potential for further exploration through more detailed secondary screening of doped GST or similar classes of phase change materials designed for the demands of future memory devices.

Entities:  

Keywords:  GST; HTOMPT; PCM; high-throughput

Mesh:

Substances:

Year:  2017        PMID: 28541033     DOI: 10.1021/acscombsci.7b00047

Source DB:  PubMed          Journal:  ACS Comb Sci        ISSN: 2156-8944            Impact factor:   3.784


  3 in total

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2.  Electronically Reconfigurable Photonic Switches Incorporating Plasmonic Structures and Phase Change Materials.

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3.  Antimony as a Programmable Element in Integrated Nanophotonics.

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Journal:  Nano Lett       Date:  2022-04-22       Impact factor: 12.262

  3 in total

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