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- W2109694890 abstract "A considerable part of the energy dissipation in CMOS buffers is due to short-circuit currents. In this paper, an accurate, analytical and compact model for this part of energy, i.e. the short-circuit energy dissipation, is presented. The model is based on closed-form expressions of the CMOS inverter output waveform, which include the influences of both transistor currents and the gate-drain coupling capacitance. An accurate version of the alpha-power law MOSFET model is used to relate the terminal voltages to the drain current in sub-100nm devices, with an extension for varying transistor widths. The resulting energy model accounts for the influences of input voltage transition time, transistors' sizes, device carrier velocity saturation and narrow-width effects, gate-drain and short-circuiting transistor's gate-source capacitances, and output load. The model has been validated for a 90-nm CMOS technology, for different input transition times, capacitive loads & inverter sizes. The results show very good agreement with BSIM4 HSPICE simulations." @default.
- W2109694890 created "2016-06-24" @default.
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- W2109694890 date "2010-12-01" @default.
- W2109694890 modified "2023-09-23" @default.
- W2109694890 title "Short-circuit energy dissipation model for sub-100nm CMOS buffers" @default.
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- W2109694890 doi "https://doi.org/10.1109/icecs.2010.5724587" @default.
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