4.8 Article

Observation of Nonlinear Dissipation in Piezoresistive Diamond Nanomechanical Resonators by Heterodyne Down-Mixing

Journal

NANO LETTERS
Volume 13, Issue 9, Pages 4014-4019

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/nl401978p

Keywords

Nanoelectro-mechanical systems; nonlinear dissipation; piezoresistive detection; nanomechanical resonator

Funding

  1. NSF
  2. Physics Department of Boston University
  3. Marie Curie fellowship DIAMEMS
  4. ESPRC Grant NCD_MEMS
  5. EPSRC [EP/J009814/1, EP/K031635/1] Funding Source: UKRI
  6. Engineering and Physical Sciences Research Council [EP/J009814/1, EP/K031635/1] Funding Source: researchfish

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We report the observation of nonlinear dissipation in diamond nanomechanical resonators measured by an ultrasensitive heterodyne down-mixing piezoresistive detection technique. The combination of a hybrid structure as well as symmetry breaking clamps enables sensitive piezoresistive detection of multiple orthogonal modes in a diamond resonator over a wide frequency and temperature range. Using this detection method, we observe the transition from purely linear dissipation at room temperature to strongly nonlinear dissipation at cryogenic temperatures. At high drive powers and below liquid nitrogen temperatures, the resonant structure dynamics follows the Pol-Duffing equation of motion. Instead of using the broadening of the full width at half-maximum, we propose a nonlinear dissipation backbone curve as a method to characterize the strength of nonlinear dissipation in devices with a nonlinear spring constant.

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