Effects of carbon concentration on the local atomic structure of amorphous GST

Robert J. Appleton, Zachary D. McClure, David P. Adams, Alejandro Strachan
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Abstract

Ge-Sb-Te (GST) alloys are leading phase-change materials for data storage due to the fast phase transition between amorphous and crystalline states. Ongoing research aims at improving the stability of the amorphous phase to improve retention. This can be accomplished by the introduction of carbon as a dopant to Ge2Sb2Te5, which is known to alter the short- and mid-range structure of the amorphous phase and form covalently bonded C clusters, both of which hinder crystallization. The relative importance of these processes as a function of C concentration is not known. We used molecular dynamics simulation based on density functional theory to study how carbon doping affects the atomic structure of GST-C. Carbon doping results in an increase in tetrahedral coordination, especially of Ge atoms, and this is known to stabilize the amorphous phase. We observe an unexpected, non-monotonous trend in the number of tetrahedral bonded Ge with the amount of carbon doping. Our simulations show an increase in the number of tetrahedral bonded Ge up to 5 at.% C, after which the number saturates and begins to decrease above 14 at.% C. The carbon atoms aggregate into clusters, mostly in the form of chains and graphene flakes, leaving less carbon to disrupt the GST matrix at higher carbon concentrations. Different degrees of carbon clustering can explain divergent experimental results for recrystallization temperature for carbon doped GST.
碳浓度对非晶态 GST 局部原子结构的影响
Ge-Sb-Te(GST)合金是用于数据存储的主要相变材料,因为它能在非晶态和结晶态之间实现快速相变。正在进行的研究旨在提高无定形相的稳定性,从而改善数据的保存。这可以通过在 Ge2Sb2Te5 中引入碳作为掺杂剂来实现,众所周知,碳会改变无定形相的短程和中程结构,并形成共价键结合的碳簇,这两者都会阻碍结晶。这些过程的相对重要性与 C 浓度的函数关系尚不清楚。我们利用基于密度泛函理论的分子动力学模拟来研究碳掺杂如何影响 GST-C 的原子结构。碳掺杂会导致四面体配位增加,尤其是 Ge 原子的配位,众所周知,这将稳定非晶相。我们观察到,随着碳掺杂量的增加,四面体键合 Ge 原子的数量出现了意想不到的非单调趋势。我们的模拟结果表明,四面体键合 Ge 的数量在 5 摄氏度时有所增加,之后达到饱和,超过 14 摄氏度时开始减少。碳原子聚集成簇,主要以链和石墨烯薄片的形式存在,在碳浓度较高时,破坏 GST 基质的碳含量较少。不同程度的碳团聚可以解释掺碳 GST 再结晶温度的不同实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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