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Nanogenerator for determination of acoustic power in ultrasonic reactors

Title
Nanogenerator for determination of acoustic power in ultrasonic reactors
Author(s)
Mistewicz, KrystianJesionek, MarcinKim, Hoe JoonHajra, SugatoKozioł, MateuszChrobok, ŁukaszWang, Xudong
Issued Date
2021-10
Citation
Ultrasonics Sonochemistry, v.78, pp.105718
Type
Article
Author Keywords
UltrasoundsAcoustic powerNanogeneratorNanowiresPiezoelectric effect
Keywords
Fast Fourier transformsNanogeneratorsPiezoelectricitySonochemistryUltrasonicsAcoustic powerFast fourierPiezoelectricPiezoelectric nanogeneratorSelf-poweredSensing materialSonochemical reactionsSonochemical synthesisUltrasound parametersNanowires
ISSN
1350-4177
Abstract
This paper presents the novel use of a sonochemical reaction product as a sensing material in self-powered ultrasonic reactor devices for determination of ultrasound parameters. A piezoelectric nanogenerator was fabricated via sonochemical synthesis of SbSeI nanowires compressed into a bulk sample. The prepared device was used to develop two fast and simple evaluation methods for acoustic power in liquid. A calibration procedure was carried out for both methods using a VCX-750 ultrasonic processor. The ultrasound acoustic power was varied within a 150 W to 750 W range and the corresponding nanogenerator electrical responses were measured. The voltage signals of the first method fit the best with theoretical dependence. The second technique was based on the application of the Fast Fourier Transform (FFT) to the measured electric output. The results of these two approaches were convergent. Acoustic power values of 255(8) W and 222(7) W were determined for the Sonic-6 reactor using theoretical dependence fitting to experimental data and FFT analysis, respectively. Developed sensing technology possesses great potential for sonochemistry applications. © 2021 The Author(s)
URI
http://hdl.handle.net/20.500.11750/15614
DOI
10.1016/j.ultsonch.2021.105718
Publisher
Elsevier BV
Related Researcher
  • 김회준 Kim, Hoe Joon
  • Research Interests MEMS/NEMS; Micro/Nano Sensors; Piezoelectric Devices; Nanomaterials; Heat Transfer; Atomic Force Microscope
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Department of Robotics and Mechatronics Engineering Nano Materials and Devices Lab 1. Journal Articles

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