Abstract
Ge-Sb-Te alloys have played a critical role in present nonvolatile optical and electrical storages. It is generally accepted that their "data encoding" (i.e. amorphization) needs the crystal melting and subsequent quenching. Therefore, liquid should be an important intermediate state during the storage. In this study, based on first-principles molecular dynamics we compared the structural properties of liquid Ge-Sb-Te alloys with three compositions: Ge 1Sb 2Te 4, Ge 2Sb 2Te 5, and Ge 4Sb 1Te 5. In long timescale mean square displacements (MSD), we observe that the element coupled state for Ge 1Sb 2Te 4 and Ge 2Sb 2Te 5 is significantly better than that of Ge 4Sb 1Te 5. The careful analyses by pair correlation functions (PCF) and compositional disorder numbers (CDN) show that Ge 2Sb 2Te 5 has the best stability among the three liquids. Bond angle distributions (BAD) further reflect that all the three liquids essentially retain the crystalline character of local structure with 90̊ bond angle. The present results are helpful to understand the rapid storage technique based on Ge-Sb-Te alloys.
Original language | English |
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Pages (from-to) | 287-290 |
Number of pages | 4 |
Journal | Computational Materials Science |
Volume | 61 |
DOIs | |
Publication status | Published - Aug 2012 |
Externally published | Yes |
Keywords
- Compositional disorder number
- First-principles molecular dynamics
- Ge-Sb-Te alloys
- Liquid phase
- Phase-change memory