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Lee, Zonghoon
Atomic-Scale Electron Microscopy Lab.
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Probing the Melting Transitions in Phase-Change Superlattices via Thin Film Nanocalorimetry

Author(s)
Zhao, JieKhan, Asir IntisarEfremov, Mikhail Y.Ye, ZichaoWu, XiangjinKim, KangsikLee, ZonghoonWong, H. -S. PhilipPop, EricAllen, Leslie H.
Issued Date
2023-05
DOI
10.1021/acs.nanolett.3c01049
URI
https://scholarworks.unist.ac.kr/handle/201301/65096
Citation
NANO LETTERS, v.23, no.10, pp.4587 - 4594
Abstract
Phase-change superlattices with nanometer thin sublayers are promising for low-power phase-change memory (PCM) on rigid and flexible platforms. However, the thermodynamics of the phase transition in such nanoscale superlattices remain unexplored, especially at ultrafast scanning rates, which is crucial for our fundamental understanding of superlattice-based PCM. Here, we probe the phase transition of Sb2Te3 (ST)/Ge2Sb2Te5 (GST) superlattices using nanocalorimetry with a monolayer sensitivity (similar to 1 angstrom) and a fast scanning rate (10(5) K/s). For a 2/1.8 nm/nm Sb2Te3/GST superlattice, we observe an endothermic melting transition with an similar to 240 degrees C decrease in temperature and an similar to 8-fold decrease in enthalpy compared to those for the melting of GST, providing key thermodynamic insights into the low-power switching of superlattice-based PCM. Nanocalorimetry measurements for Sb2Te3 alone demonstrate an intrinsic premelting similar to the unique phase transition of superlattices, thus revealing a critical role of the Sb2Te3 sublayer within our superlattices. These results advance our understanding of superlattices for energy-efficient data storage and computing.
Publisher
AMER CHEMICAL SOC
ISSN
1530-6984
Keyword (Author)
phase-change superlatticenanocalorimetryphase transitionmelting enthalpysuperlatticeinterfaceultrafast scanning
Keyword
SWITCHING CURRENT-DENSITYHEAT-CAPACITYCHANGE MEMORYCRYSTALLIZATIONBEHAVIOR

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