Piezoresistive Cantilever Microprobe with Integrated Actuator for Contact Resonance Imaging

A novel piezoresistive cantilever microprobe (PCM) with an integrated electrothermal or piezoelectric actuator has been designed to replace current commercial PCMs, which require external actuators to perform contact-resonance imaging (CRI) of workpieces and avoid unwanted “forest of peaks” observed...

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Main Authors: Tianran Ma, Michael Fahrbach, Erwin Peiner
Format: Article
Language:English
Published: MDPI AG 2025-01-01
Series:Sensors
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Online Access:https://www.mdpi.com/1424-8220/25/2/332
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author Tianran Ma
Michael Fahrbach
Erwin Peiner
author_facet Tianran Ma
Michael Fahrbach
Erwin Peiner
author_sort Tianran Ma
collection DOAJ
description A novel piezoresistive cantilever microprobe (PCM) with an integrated electrothermal or piezoelectric actuator has been designed to replace current commercial PCMs, which require external actuators to perform contact-resonance imaging (CRI) of workpieces and avoid unwanted “forest of peaks” observed at large travel speed in the millimeter-per-second range. Initially, a PCM with integrated resistors for electrothermal actuation (ETA) was designed, built, and tested. Here, the ETA can be performed with a piezoresistive Wheatstone bridge, which converts mechanical strain into electrical signals by boron diffusion in order to simplify the production process. Moreover, a new substrate contact has been added in the new design for an AC voltage supply for the Wheatstone bridge to reduce parasitic signal influence via the EAM (Electromechanical Amplitude Modulation) in our homemade CRI system. Measurements on a bulk Al sample show the expected force dependence of the CR frequency. Meanwhile, fitting of the measured contact-resonance spectra was applied based on a Fano-type line shape to reveal the material-specific signature of a single harmonic resonator. However, noise is greatly increased with the bending mode and contact force increasing on viscoelastic samples. Then, to avoid unspecific peaks remaining in the spectra of soft samples, cantilevers with integrated piezoelectric actuators (PEAs) were designed. The numbers and positions of the actuators were optimized for specific CR vibration modes using analytical modeling of the cantilever bending based on the transfer-matrix method and Hertzian contact mechanics. To confirm the design of the PCM with a PEA, finite element analysis (FEA) of CR probing of a sample with a Young’s modulus of 10 GPa was performed. Close agreement was achieved by Fano-type line shape fitting of amplitude and phase of the first four vertical bending modes of the cantilever. As an important structure of the PCM with a PEA, the piezoresistive Wheatstone bridge had to have suitable doping parameters adapted to the boundary conditions of the manufacturing process of the newly designed PCM.
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spelling doaj-art-a19158b1aa724a488299f8824cbbf7772025-01-24T13:48:32ZengMDPI AGSensors1424-82202025-01-0125233210.3390/s25020332Piezoresistive Cantilever Microprobe with Integrated Actuator for Contact Resonance ImagingTianran Ma0Michael Fahrbach1Erwin Peiner2Institute of Semiconductor Technology (IHT), Technische Universität Braunschweig, Hans-Sommer-Straße 66, 38106 Braunschweig, GermanyInstitute of Semiconductor Technology (IHT), Technische Universität Braunschweig, Hans-Sommer-Straße 66, 38106 Braunschweig, GermanyInstitute of Semiconductor Technology (IHT), Technische Universität Braunschweig, Hans-Sommer-Straße 66, 38106 Braunschweig, GermanyA novel piezoresistive cantilever microprobe (PCM) with an integrated electrothermal or piezoelectric actuator has been designed to replace current commercial PCMs, which require external actuators to perform contact-resonance imaging (CRI) of workpieces and avoid unwanted “forest of peaks” observed at large travel speed in the millimeter-per-second range. Initially, a PCM with integrated resistors for electrothermal actuation (ETA) was designed, built, and tested. Here, the ETA can be performed with a piezoresistive Wheatstone bridge, which converts mechanical strain into electrical signals by boron diffusion in order to simplify the production process. Moreover, a new substrate contact has been added in the new design for an AC voltage supply for the Wheatstone bridge to reduce parasitic signal influence via the EAM (Electromechanical Amplitude Modulation) in our homemade CRI system. Measurements on a bulk Al sample show the expected force dependence of the CR frequency. Meanwhile, fitting of the measured contact-resonance spectra was applied based on a Fano-type line shape to reveal the material-specific signature of a single harmonic resonator. However, noise is greatly increased with the bending mode and contact force increasing on viscoelastic samples. Then, to avoid unspecific peaks remaining in the spectra of soft samples, cantilevers with integrated piezoelectric actuators (PEAs) were designed. The numbers and positions of the actuators were optimized for specific CR vibration modes using analytical modeling of the cantilever bending based on the transfer-matrix method and Hertzian contact mechanics. To confirm the design of the PCM with a PEA, finite element analysis (FEA) of CR probing of a sample with a Young’s modulus of 10 GPa was performed. Close agreement was achieved by Fano-type line shape fitting of amplitude and phase of the first four vertical bending modes of the cantilever. As an important structure of the PCM with a PEA, the piezoresistive Wheatstone bridge had to have suitable doping parameters adapted to the boundary conditions of the manufacturing process of the newly designed PCM.https://www.mdpi.com/1424-8220/25/2/332piezoelectric sensorvibration modelnumerical simulationsWheatstone bridgepiezoresistivity
spellingShingle Tianran Ma
Michael Fahrbach
Erwin Peiner
Piezoresistive Cantilever Microprobe with Integrated Actuator for Contact Resonance Imaging
Sensors
piezoelectric sensor
vibration model
numerical simulations
Wheatstone bridge
piezoresistivity
title Piezoresistive Cantilever Microprobe with Integrated Actuator for Contact Resonance Imaging
title_full Piezoresistive Cantilever Microprobe with Integrated Actuator for Contact Resonance Imaging
title_fullStr Piezoresistive Cantilever Microprobe with Integrated Actuator for Contact Resonance Imaging
title_full_unstemmed Piezoresistive Cantilever Microprobe with Integrated Actuator for Contact Resonance Imaging
title_short Piezoresistive Cantilever Microprobe with Integrated Actuator for Contact Resonance Imaging
title_sort piezoresistive cantilever microprobe with integrated actuator for contact resonance imaging
topic piezoelectric sensor
vibration model
numerical simulations
Wheatstone bridge
piezoresistivity
url https://www.mdpi.com/1424-8220/25/2/332
work_keys_str_mv AT tianranma piezoresistivecantilevermicroprobewithintegratedactuatorforcontactresonanceimaging
AT michaelfahrbach piezoresistivecantilevermicroprobewithintegratedactuatorforcontactresonanceimaging
AT erwinpeiner piezoresistivecantilevermicroprobewithintegratedactuatorforcontactresonanceimaging