重置(财务)
相变存储器
热传导
相变
材料科学
相(物质)
物理
工程物理
业务
量子力学
复合材料
财务
作者
Md Samzid Bin Hafiz,Helena Silva,Ali Gokirmak
标识
DOI:10.1002/pssr.202400416
摘要
A computational analysis is performed on percolation transport and filament formation in amorphous Ge 2 Sb 2 Te 5 (a‐GST) using 2D finite element multiphysics simulations with 2 nm out‐of‐plane depth using an electric field and temperature‐dependent electronic transport model with carrier activation energies that vary locally around 0.3 eV and as a function of temperature. The snapback (threshold switching) behavior in the current–voltage ( I–V ) characteristics at ≈50 MV m −1 electric field with 0.63 μA current for 300 K ambient temperature, where current collapses onto a single molten filament with ≈2 nm diameter, aligned with the electric field, and the device switches from a high‐resistance state (10 8 Ω) to a low‐resistance state (10 3 Ω) is observed. Further increase in voltage across the device leads to widening of the molten filament. Snapback current and electric field are strong functions of ambient temperature, ranging from ≈0.53 μA at 200 K to ≈16.93 μA at 800 K and ≈85 MV m −1 at 150 K to 45 MV m −1 at 350 K, respectively. Snapback electric field decreases exponentially with increasing device length, converging to ≈38 MV m −1 for devices longer than 200 nm.
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