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Impact of Solid-Liquid Interfacial Thermodynamics on the Phase Change Memory RESET Process.
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Impact of Solid-Liquid Interfacial Thermodynamics on the Phase Change Memory RESET Process.
자료유형  
 학위논문
Control Number  
0017162215
International Standard Book Number  
9798383223130
Dewey Decimal Classification Number  
620.11
Main Entry-Personal Name  
Lewis, Matthew J.
Publication, Distribution, etc. (Imprint  
[S.l.] : University of Washington., 2024
Publication, Distribution, etc. (Imprint  
Ann Arbor : ProQuest Dissertations & Theses, 2024
Physical Description  
115 p.
General Note  
Source: Dissertations Abstracts International, Volume: 86-01, Section: B.
General Note  
Advisor: Brush, Lucien.
Dissertation Note  
Thesis (Ph.D.)--University of Washington, 2024.
Summary, Etc.  
요약A model of the RESET melting process in conventional phase-change memory (PCM) devices is constructed in which the Gibbs-Thomson effect, representing local equilibrium at the solid-liquid interface, is included as an interfacial condition for the electro-thermal model of the PCM device. A comparison is made between the Gibbs-Thomson model and a commonly used model in which the interfacial temperature is fixed at the bulk melting temperature of the PCM material. The model is applied to conventional PCM designs in which a dome-shaped liquid/amorphous region is formed. Two families of solutions are computed representing steady state liquid regions, distinguished by their thermodynamic aspects. There is a family of solutions representing a liquid nucleation process, and a family of larger steady-state liquid solutions representing the limit of the melting process. A linear stability analysis is performed on the steady states, showing that the nucleus state is the threshold for further growth of the liquid phase which proceeds towards the melting limit state, which is the final stable state in the system. A comparison with a spherical symmetric model shows that in the isothermal limit the system is identical with the case of classical nucleation theory. The melting limits enable calculation of minima in voltage and corresponding current required for the RESET process. In this PCM configuration, the Gibbs-Thomson effect constrains the equilibrium solid-liquid interface temperature to remain above the bulk melting temperature during melting. The magnitude of this temperature difference increases with decreasing device size scale, thus requiring an increase in the required voltage and current needed for RESET compared to the case in which the interface temperature is approximated by the bulk melting temperature. This increase becomes substantial for active device dimensions in the 20nm range. The impact of this phenomena on PCM device design is discussed, emphasizing the increased motivation to explore alternative designs that avoid or reverse the cost penalty due to solid-liquid interfacial thermodynamics. By reducing the required RESET power, such design decisions have the potential to improve the performance of PCM for a multitude of applications, including storage class memory, neuromorphic computing, and in-memory computing for machine learning applications.
Subject Added Entry-Topical Term  
Materials science.
Subject Added Entry-Topical Term  
Thermodynamics.
Subject Added Entry-Topical Term  
Mechanical engineering.
Index Term-Uncontrolled  
Neuromorphic computing
Index Term-Uncontrolled  
Storage class memory
Index Term-Uncontrolled  
Phase-change memory
Index Term-Uncontrolled  
Solid-liquid interface
Index Term-Uncontrolled  
Machine learning
Added Entry-Corporate Name  
University of Washington Materials Science and Engineering
Host Item Entry  
Dissertations Abstracts International. 86-01B.
Electronic Location and Access  
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Control Number  
joongbu:655219
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