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Efficient Multi-Dimensional Simulation of Quantum Confinement Effects in Advanced MOS DevicesWe investigate the density-gradient (DG) transport model for efficient multi-dimensional simulation of quantum confinement effects in advanced MOS devices. The formulation of the DG model is described as a quantum correction ot the classical drift-diffusion model. Quantum confinement effects are shown to be significant in sub-100nm MOSFETs. In thin-oxide MOS capacitors, quantum effects may reduce gate capacitance by 25% or more. As a result, the inclusion of quantum effects may reduce gate capacitance by 25% or more. As a result, the inclusion of quantum effects in simulations dramatically improves the match between C-V simulations and measurements for oxide thickness down to 2 nm. Significant quantum corrections also occur in the I-V characteristics of short-channel (30 to 100 nm) n-MOSFETs, with current drive reduced by up to 70%. This effect is shown to result from reduced inversion charge due to quantum confinement of electrons in the channel. Also, subthreshold slope is degraded by 15 to 20 mV/decade with the inclusion of quantum effects via the density-gradient model, and short channel effects (in particular, drain-induced barrier lowering) are noticeably increased.
Document ID
20040151771
Acquisition Source
Ames Research Center
Document Type
Preprint (Draft being sent to journal)
Authors
Biegel, Bryan A.
(NASA Ames Research Center Moffett Field, CA, United States)
Ancona, Mario G.
(Naval Research Lab.)
Rafferty, Conor S.
(Lucent Technologies)
Yu, Zhiping
(Stanford Univ.)
Date Acquired
September 7, 2013
Publication Date
January 1, 2000
Subject Category
Solid-State Physics
Funding Number(s)
CONTRACT_GRANT: NAS2-14303
OTHER: 704-05-40
Distribution Limits
Public
Copyright
Public Use Permitted.
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