The effect of viscous air damping on an optically actuated multilayer MoS2 nanomechanical resonator using fabry-perot interference

Yu Mei She, Cheng Li*, Tian Lan, Xiao Bin Peng, Qian Wen Liu, Shang Chun Fan

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

8 Citations (Scopus)

Abstract

We demonstrated a multilayer molybdenum disulfide (MoS2) nanomechanical resonator by using optical Fabry-Perot (F-P) interferometric excitation and detection. The thin circular MoS2 nanomembrane with an approximate 8-nm thickness was transferred onto the endface of a ferrule with an inner diameter of 125 µm, which created a low finesse F-P interferometer with a cavity length of 39.92 µm. The effects of temperature and viscous air damping on resonance behavior of the resonator were investigated in the range of -10-80 °C. Along with the optomechanical behavior of the resonator in air, the measured resonance frequencies ranged from 36 kHz to 73 kHz with an extremely low inflection point at 20 °C, which conformed reasonably to those solved by previously obtained thermal expansion coefficients of MoS2. Further, a maximum quality (Q) factor of 1.35 for the resonator was observed at 0 °C due to viscous dissipation, in relation to the lower Knudsen number of 0.0025~0.0034 in the tested temperature range. Moreover, measurements of Q factor revealed little dependence of Q on resonance frequency and temperature. These measurements shed light on the mechanisms behind viscous air damping in MoS2, graphene, and other 2D resonators.

Original languageEnglish
Article number162
JournalNanomaterials
Volume6
Issue number9
DOIs
Publication statusPublished - 5 Sept 2016
Externally publishedYes

Keywords

  • Fabry-perot interference
  • Multilayer MoS diaphragm
  • Resonator
  • Viscous air damping

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