4.6 Article

Utilization of coupled eigenmodes in Akiyama atomic force microscopy probes for bimodal multifrequency sensing

Journal

NANOTECHNOLOGY
Volume 33, Issue 45, Pages -

Publisher

IOP Publishing Ltd
DOI: 10.1088/1361-6528/ac8232

Keywords

atomic force microscopy; Akiyama; photo-induced force microscopy; multifrequency force sensing

Funding

  1. US Department of Energy's NNSA [89233218CNA000001]
  2. DOE, BES, Quantum Information Science Infrastructure Development Project, Deterministic Placement and Integration of Quantum Defects
  3. LDRD Early Career Award [20220531ECR]
  4. LDRD programs [20220627DI, 20220228ER]

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Akiyama atomic force microscopy probes combine the advantages of tuning fork and cantilever probe designs, allowing for multi-modal force sensing of nanoscale photothermal response.
Akiyama atomic force microscopy probes represent a unique means of combining several of the desirable properties of tuning fork and cantilever probe designs. As a hybridized mechanical resonator, the vibrational characteristics of Akiyama probes result from a complex coupling between the intrinsic vibrational eigenmodes of its constituent tuning fork and bridging cantilever components. Through a combination of finite element analysis modeling and experimental measurements of the thermal vibrations of Akiyama probes we identify a complex series of vibrational eigenmodes and measure their frequencies, quality factors, and spring constants. We then demonstrate the viability of Akiyama probes to perform bimodal multi-frequency force sensing by performing a multimodal measurement of a surface's nanoscale photothermal response using photo-induced force microscopy imaging techniques. Further performing a parametric search over alternative Akiyama probe geometries, we propose two modified probe designs to enhance the capability of Akiyama probes to perform sensitive bimodal multifrequency force sensing measurements.

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