Gate-Dielectric Engineering with an Ultrathin Silicon Oxide Interfacial Dipole Layer for Low-Leakage Oxide-Semiconductor Memories.
basic_science · Level V
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- Record sourced from PubMed, PMID 41729232.
- Also identified by DOI 10.1021/acs.nanolett.5c05167.
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Abstract
We demonstrate a gate-dielectric engineering approach leveraging an ultrathin, atomic-layer-deposited silicon oxide interfacial layer (SiL) between the amorphous oxide semiconductor (AOS) channel and the high-<i>k</i> gate dielectric. SiL positively shifts the threshold voltage (<i>V</i><sub>T</sub>) of AOS transistors, providing at least four distinct <i>V</i><sub>T</sub> levels with a maximum increase of 500 mV. It achieves stable <i>V</i><sub>T</sub> control without significantly degrading critical device parameters such as mobility and on-state current, all while keeping the process temperature below 225 °C and requiring no additional heat treatment to activate the dipole. Positive-bias temperature instability tests at 85 °C indicate a significant reduction in negative <i>V</i><sub>T</sub> shifts for SiL-integrated devices, highlighting the enhanced reliability. Incorporating this SiL gate stack into two-transistor gain-cell (GC) memory maintains a more stable storage node voltage (<i>V</i><sub>SN</sub>) (reduces <i>V</i><sub>SN</sub> drop by 67%), by limiting unwanted charge losses. SiL-engineered GCs also reach retention times up to 10000 s at room temperature and reduce standby leakage current by 3 orders of magnitude relative to baseline device, substantially lowering refresh energy consumption.