4.2 Article

Electro-superlubric springs for continuously tunable resonators and oscillators

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COMMUNICATIONS MATERIALS
卷 2, 期 1, 页码 -

出版社

SPRINGERNATURE
DOI: 10.1038/s43246-021-00207-1

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资金

  1. National Natural Science Foundation of China [11572173, 11890671, 51961145304]
  2. National Key Basic Research Program of China [2013CB934200]
  3. Cyrus Tang Foundation [202003]
  4. Beijing Municipal Science & Technology Commission [Z151100003315008]
  5. Tsinghua University Initiative Scientific Research [2014z01007, 2012Z01015]
  6. State Key Laboratory of Tribology Tsinghua University Initiative Scientific Research [SKLT2019D02]

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The study introduces a novel electro-superlubric spring for continuously tunable microscale or nanoscale resonators, as well as an easily operable electro-superlubric oscillator. The design shows significant potential for widespread application in modern technology.
Resonators and resonator-based oscillators are used in most electronics systems and they are classified as either mechanical or electrical, with fixed or difficult-to-tune resonant frequencies. Here, we propose an electro-superlubric spring, whose restoring force between two contacting sliding solid surfaces in the structural superlubric state is linearly dependent on the sliding displacement from the balanced position. We use theoretical analysis and finite element methods to study the restoring force and stability. The stiffness of this electro-superlubric spring is proportional to the square of the applied electric bias, facilitating continuous tuning from zero to several megahertz or gigahertz for the microscale or nanoscale resonators, respectively. Furthermore, we propose an electro-superlubric oscillator that is easily operated by varying a pair of harmonic voltages. The resonant frequency, resonant amplitude, quality factor, and maximum resonant speed can be continuously tuned via the applied voltage and bias. These results indicate significant potential in the applications of electro-superlubric resonators and oscillators. Microscale resonators are widely used in modern technology and achieving large tunability of their resonant frequency is highly desirable. Here, a design for electro-superlubric springs, based on a restoring force between sliding solid surfaces, is predicted to have continuously tunable resonant frequencies from zero to several GHz.

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