English

MoS2 Nanoresonators: Intrinsically Better Than Graphene?

Mesoscale and Nanoscale Physics 2014-03-19 v2 Materials Science

Abstract

We perform classical molecular dynamics simulations to examine the intrinsic energy dissipation in single-layer MoS2_{2} nanoresonators, where a point of emphasis is to compare its dissipation characteristics with those of single-layer graphene. Our key finding is that MoS2_{2} nanoresonators exhibit significantly lower energy dissipation, and thus higher quality (Q)-factors by at least a factor of four below room temperature, than graphene. Furthermore, this high Q-factor endows MoS2_{2} nanoresonators with a higher figure of merit, defined as frequency times Q-factor, despite a resonant frequency that is 5050% smaller than graphene for the same size. By utilizing arguments from phonon-phonon scattering theory, we show that this reduced energy dissipation is enabled by the large energy gap in the phonon dispersion of MoS2_{2}, which separates the acoustic phonon branches from the optical phonon branches, leading to a preserving mechanism for the resonant oscillation of MoS2_{2} nanoresonators. We further investigate the effects of tensile mechanical strain and nonlinear actuation on the Q-factors, where the tensile strain is found to counteract the reductions in Q-factor that occur with higher actuation amplitudes. Overall, our simulations illustrate the potential utility of MoS2_{2} for high frequency sensing and actuation applications.

Keywords

Cite

@article{arxiv.1401.0576,
  title  = {MoS2 Nanoresonators: Intrinsically Better Than Graphene?},
  author = {Jin-Wu Jiang and Harold S. Park and Timon Rabczuk},
  journal= {arXiv preprint arXiv:1401.0576},
  year   = {2014}
}

Comments

Nanoscale, published

R2 v1 2026-06-22T02:38:32.973Z