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◆ Advanced materials (Deerfield Beach, Fla.)2026-08-20

Extreme Bond Ionicity in Mg─Te Chalcogenides for Ultrathin Low Voltage Selector-Only Memory beyond the Leakage Scaling Limit.

Yoori Seo, Dongmin Kim, Yu Bin Park, Jangseop Lee, Tae Hoon Lee, Hyunsang Hwang

原始摘要(英文原文)· Original abstract
Conventional ovonic threshold switching (OTS) chalcogenides face a fundamental scaling limit for selector-only memory (SOM), because aggressive thickness scaling increases leakage current and hinders reliable low voltage operation. Here, this trade-off can be overcome by exploiting the unique materials characteristics of the Mg─Te chalcogenide system. Guided by the bonding ionicity map and supported by density functional theory calculations, Mg─Te is identified as an optimal telluride material whose highly ionic bonding is associated with deeper trap levels, a large memory window of 1.75 V, and suppressed leakage in 20 nm devices. Structural analyses and multiscale simulations suggest that the spontaneous phase separation in Mg1Te3 forms MgTe-like ordered nanodomains and Te-rich amorphous regions, providing structural partitioning that may constrain the effective amorphous switching network and reduce stochastic switching variability. With a thin Hf interlayer, the 5 nm Mg1Te3 device achieves narrow SET/RESET switching uniformity of σ = 15/28 mV at ± 2.5 V operating voltage, representative 10 ns programming speed, and write endurance exceeding 1010 cycles in the best-performing device. These results highlight Mg─Te as a promising basis for highly scaled ultralow voltage SOM through the combined roles of ionic bonding, structural partitioning, and interfacial engineering.
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Extreme Bond Ionicity in Mg─Te Chalcogenides for Ultrathin Low Voltage Selector-Only Memory beyond the Leakage Scaling Limit. — 科研速览 Science Skim