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Simulation Modeling and Investigation of Silicon on Insulator Devices
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<p>This work provides a thorough comparative analysis between performance, reliability and scaling limits for the Silicon-on-Insulator (SOI) n-MOSFET architectures at the 5 nm technology node. Using high-fidelity TCAD simulations, the 5 nm Partially Depleted SOI (PDSOI) variant with an 8 nm silicon body and heavy channel doping (1 × 10^20 cm^−3) is contrasted against a threshold voltage tree-based optimization of a 5 nm Fully Depleted SOI (FDSOI) device incorporating 1.3 nm ultra-thin body (<i>UTB</i>) and lightly doped channel (1 × 10^10 cm^−3). The PDSOI variant is found to have an even better intrinsic <i>f_T</i> of 4.2 THz; however, it’s severely affected by floating-body instabilities, a severe kink-effect as well as very high lateral electric fields peaking at 20 MV/cm. On the contrary, the FDSOI topology can effectively suppress kink-effect and moderate electric field stress (6.6 MV/cm) for better electrostatic integrity. The key result here is the realization of body volume inversion for 1.3 nm FDSOI, which provides maximum electron mobility (473 cm^2/Vs); almost eightfold improvement compared to PDSOI along with a large drive current of 1050 <i>µA</i>. Moreover, the introduction of <i>high-k</i> dielectric such as <i>Ta2O5</i> into this platform enables an unprecedentedly high<i> I_ON/I_OFF</i> ratio = 7.41 × 10^9 in FDSOI. It is argued that the 5 nm FDSOI platform offers the best combination of power efficiency, mobility and performance for future terahertz-scale integrated-circuits.</p>
Title: Simulation Modeling and Investigation of Silicon on Insulator Devices
Description:
<p>This work provides a thorough comparative analysis between performance, reliability and scaling limits for the Silicon-on-Insulator (SOI) n-MOSFET architectures at the 5 nm technology node.
Using high-fidelity TCAD simulations, the 5 nm Partially Depleted SOI (PDSOI) variant with an 8 nm silicon body and heavy channel doping (1 × 10^20 cm^−3) is contrasted against a threshold voltage tree-based optimization of a 5 nm Fully Depleted SOI (FDSOI) device incorporating 1.
3 nm ultra-thin body (<i>UTB</i>) and lightly doped channel (1 × 10^10 cm^−3).
The PDSOI variant is found to have an even better intrinsic <i>f_T</i> of 4.
2 THz; however, it’s severely affected by floating-body instabilities, a severe kink-effect as well as very high lateral electric fields peaking at 20 MV/cm.
On the contrary, the FDSOI topology can effectively suppress kink-effect and moderate electric field stress (6.
6 MV/cm) for better electrostatic integrity.
The key result here is the realization of body volume inversion for 1.
3 nm FDSOI, which provides maximum electron mobility (473 cm^2/Vs); almost eightfold improvement compared to PDSOI along with a large drive current of 1050 <i>µA</i>.
Moreover, the introduction of <i>high-k</i> dielectric such as <i>Ta2O5</i> into this platform enables an unprecedentedly high<i> I_ON/I_OFF</i> ratio = 7.
41 × 10^9 in FDSOI.
It is argued that the 5 nm FDSOI platform offers the best combination of power efficiency, mobility and performance for future terahertz-scale integrated-circuits.
</p>.
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