English

Performance Analysis of Strained Monolayer MoS$_{2}$ MOSFET

Mesoscale and Nanoscale Physics 2013-08-02 v2

Abstract

We present a computational study on the impact of tensile/compressive uniaxial (εxx\varepsilon_{xx}) and biaxial (εxx=εyy\varepsilon_{xx}=\varepsilon_{yy}) strain on monolayer MoS2_{2} NMOS and PMOS FETs. The material properties like band structure, carrier effective mass and the multi-band Hamiltonian of the channel, are evaluated using the Density Functional Theory (DFT). Using these parameters, self-consistent Poisson-Schr\"{o}dinger solution under the Non-Equilibrium Green's Function (NEGF) formalism is carried out to simulate the MOS device characteristics. 1.75% uniaxial tensile strain is found to provide a minor (6%) ON current improvement for the NMOSFET, whereas same amount of biaxial tensile strain is found to considerably improve the PMOSFET ON currents by 2-3 times. Compressive strain however degrades both NMOS and PMOS device performance. It is also observed that the improvement in PMOSFET can be attained only when the channel material becomes indirect-gap in nature. We further study the performance degradation in the quasi-ballistic long channel regime using a projected current method.

Keywords

Cite

@article{arxiv.1307.1300,
  title  = {Performance Analysis of Strained Monolayer MoS$_{2}$ MOSFET},
  author = {Amretashis Sengupta and Ram Krishna Ghosh and Santanu Mahapatra},
  journal= {arXiv preprint arXiv:1307.1300},
  year   = {2013}
}
R2 v1 2026-06-22T00:45:30.278Z