Characterization of Mechanical Properties of Thin-Film Li-Ion BatteryElectrodes from Laser Excitation and Measurements ofZero-Group Velocity Resonances

The mechanical properties of thin-film Li-ion battery electrodes are controlled by the micro structure of the constituent materials. In this work, a non-contact and non-destructive measurement of the mechanical properties of electrode films is performed by measurement of zero group velocity (ZGV) re...

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Main Author: Yao, Jing
Format: Others
Published: BYU ScholarsArchive 2019
Subjects:
Online Access:https://scholarsarchive.byu.edu/etd/7128
https://scholarsarchive.byu.edu/cgi/viewcontent.cgi?article=8128&context=etd
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spelling ndltd-BGMYU2-oai-scholarsarchive.byu.edu-etd-81282021-09-12T05:01:29Z Characterization of Mechanical Properties of Thin-Film Li-Ion BatteryElectrodes from Laser Excitation and Measurements ofZero-Group Velocity Resonances Yao, Jing The mechanical properties of thin-film Li-ion battery electrodes are controlled by the micro structure of the constituent materials. In this work, a non-contact and non-destructive measurement of the mechanical properties of electrode films is performed by measurement of zero group velocity (ZGV) resonances. The ZGV Lamb wave modes of a solid bi-layer consisting of a thin metallic layer and a thin compliant coating layer are shown to be dependent on the Young's moduli, thicknesses, densities and Poisson ratios of the layers. Theoretical models are used to quantify the sensitivity of the ZGV resonances to changes in mechanical properties. Experimental ZGV resonances are excited using a pulsed infrared laser and detected using a laser interferometer. Commercial-grade battery films with different coating materials, densities and thicknesses are measured. Young's moduli of the battery electrode layers are estimated using the combination of a theoretical model and experimental results. The effect of the calendering process on the battery materials is also investigated. Results suggest that the Young's modulus of the electrode coating increases drastically after the battery films are calendered. This technique can be used to quantitatively study the mechanical properties of Li-ion battery electrodes to improve overall battery performance. 2019-03-01T08:00:00Z text application/pdf https://scholarsarchive.byu.edu/etd/7128 https://scholarsarchive.byu.edu/cgi/viewcontent.cgi?article=8128&context=etd http://lib.byu.edu/about/copyright/ Theses and Dissertations BYU ScholarsArchive Battery Lamb waves ZGV Lamb modes Laser ultrasonic measurements Material characterization
collection NDLTD
format Others
sources NDLTD
topic Battery
Lamb waves
ZGV Lamb modes
Laser ultrasonic measurements
Material
characterization
spellingShingle Battery
Lamb waves
ZGV Lamb modes
Laser ultrasonic measurements
Material
characterization
Yao, Jing
Characterization of Mechanical Properties of Thin-Film Li-Ion BatteryElectrodes from Laser Excitation and Measurements ofZero-Group Velocity Resonances
description The mechanical properties of thin-film Li-ion battery electrodes are controlled by the micro structure of the constituent materials. In this work, a non-contact and non-destructive measurement of the mechanical properties of electrode films is performed by measurement of zero group velocity (ZGV) resonances. The ZGV Lamb wave modes of a solid bi-layer consisting of a thin metallic layer and a thin compliant coating layer are shown to be dependent on the Young's moduli, thicknesses, densities and Poisson ratios of the layers. Theoretical models are used to quantify the sensitivity of the ZGV resonances to changes in mechanical properties. Experimental ZGV resonances are excited using a pulsed infrared laser and detected using a laser interferometer. Commercial-grade battery films with different coating materials, densities and thicknesses are measured. Young's moduli of the battery electrode layers are estimated using the combination of a theoretical model and experimental results. The effect of the calendering process on the battery materials is also investigated. Results suggest that the Young's modulus of the electrode coating increases drastically after the battery films are calendered. This technique can be used to quantitatively study the mechanical properties of Li-ion battery electrodes to improve overall battery performance.
author Yao, Jing
author_facet Yao, Jing
author_sort Yao, Jing
title Characterization of Mechanical Properties of Thin-Film Li-Ion BatteryElectrodes from Laser Excitation and Measurements ofZero-Group Velocity Resonances
title_short Characterization of Mechanical Properties of Thin-Film Li-Ion BatteryElectrodes from Laser Excitation and Measurements ofZero-Group Velocity Resonances
title_full Characterization of Mechanical Properties of Thin-Film Li-Ion BatteryElectrodes from Laser Excitation and Measurements ofZero-Group Velocity Resonances
title_fullStr Characterization of Mechanical Properties of Thin-Film Li-Ion BatteryElectrodes from Laser Excitation and Measurements ofZero-Group Velocity Resonances
title_full_unstemmed Characterization of Mechanical Properties of Thin-Film Li-Ion BatteryElectrodes from Laser Excitation and Measurements ofZero-Group Velocity Resonances
title_sort characterization of mechanical properties of thin-film li-ion batteryelectrodes from laser excitation and measurements ofzero-group velocity resonances
publisher BYU ScholarsArchive
publishDate 2019
url https://scholarsarchive.byu.edu/etd/7128
https://scholarsarchive.byu.edu/cgi/viewcontent.cgi?article=8128&context=etd
work_keys_str_mv AT yaojing characterizationofmechanicalpropertiesofthinfilmliionbatteryelectrodesfromlaserexcitationandmeasurementsofzerogroupvelocityresonances
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