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February 28, 2026Nano Letters2 citations

Strain Dilution in Thermoelastic Damping in Two-Dimensional MoS 2 Resonators

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SCShusen ChenMVMorten VollmannIKInes Kraiem

Key Points

  • This research aims to improve signal processing and sensing in 2D MoS2 resonators by exploring strain dilution effects on thermoelastic damping.
  • Developed a thermoelastic damping model for MoS2 resonators.
  • Measured multilayer MoS2 resonators using radio frequency down-mixing.
  • Conducted a temperature sweep from 270-380 K to assess frequency-temperature sensitivity.
  • Demonstrated that gate-induced tensile strain increased the quality factor from 55 to 3211.
  • Found a near-linear frequency-temperature slope of -0.179 ± 0.001 MHz K^-1.
  • A finer scan showed a ∼23% steeper slope, indicating temperature control is crucial.

Abstract

Two-dimensional (2D) nanoelectromechanical systems combine ultralow areal mass with high in-plane stiffness, enabling sensitive sensing and signal processing, yet the readout is constrained by dissipation and weak motional currents. Here, we develop a strain-diluted thermoelastic damping (TED) model and validate it using bi-, tri-, and multilayer doubly clamped MoS2 resonators measured via radio frequency (RF) down-mixing. At room temperature, gate-induced tensile strain dilutes TED and raises the quality factor (Q) from 55 to 3211 (∼58×) while simultaneously amplifying the motion-induced current. To quantify temperature cross-sensitivity, we perform a 270-380 K sweep and find a near-linear frequency-temperature slope of -0.179 ± 0.001 MHz K-1. A finer 290-295 K scan yields a ∼23% steeper slope, underscoring the need for precise thermal control. These results provide design rules linking strain engineering with RF down-mixing for a high-signal-to-noise-ratio, all-electrical readout in 2D resonators.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69a2878e0a974eb0d3c035bfhttps://doi.org/10.1021/acs.nanolett.5c06288
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