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Frequency-Dependent Piezoresistive Effect in Top-down Fabricated Gold Nanoresistors

Applied Physics 2021-09-21 v1

Abstract

Piezoresistive strain gauges allow for electronic readout of mechanical deformations with high fidelity. As piezoresistive strain gauges are aggressively being scaled down for applications in nanotechnology, it has become critical to investigate their physical attributes at different limits. Here, we describe an experimental approach for studying the piezoresistive gauge factor of a gold thin-film nanoresistor as a function of frequency. The nanoresistor is fabricated lithographically near the anchor of a nanomechanical doubly-clamped beam resonator. As the resonator is driven to resonance in one of its normal modes, the nanoresistor is exposed to frequency-dependent strains of {ε105\varepsilon \lesssim 10^{-5}} in the 436 MHz4-36~\rm MHz range. We calibrate the strain using optical interferometry and measure the resistance changes using a radio-frequency mix-down technique. The piezoresistive gauge factor γ\gamma of our lithographic gold nanoresistors is γ3.6\gamma \approx 3.6 at 4 MHz, in agreement with comparable macroscopic thin metal film resistors in previous works. However, our γ\gamma values increase monotonically with frequency and reach γ15\gamma \approx 15 at 36 MHz. We discuss possible physics that may give rise to this unexpected frequency dependence.

Keywords

Cite

@article{arxiv.2109.09459,
  title  = {Frequency-Dependent Piezoresistive Effect in Top-down Fabricated Gold Nanoresistors},
  author = {C. Ti and A. B. Ari and M. C. Karakan and C. Yanik and I. I. Kaya and M. S. Hanay and O. Svitelskiy and M. Gonzalez and H. Seren and K. L. Ekinci},
  journal= {arXiv preprint arXiv:2109.09459},
  year   = {2021}
}

Comments

26 pages, 30 figures