研究目的
Investigating the interaction between fiber-optic evanescent wave sensors (FOEWS) and graphite particles within a lithium ion battery to monitor graphite lithiation and capacity fade.
研究成果
The FOEWS demonstrated sensitivity to lithium concentration at the surface of graphite particles and the ability to detect capacity fade in real-time. The analysis of the slope of transmittance during cycling can be potentially used in an algorithm to determine the state of lithiation in real time. The results support the development of algorithms that optimize the control and monitoring of graphite lithiation for safer operation and maximized battery life.
研究不足
The presence of a FOEWS within a graphite electrode may impact lithiation dynamics around the sensor, depending on the size of the sensor and current flow through the electrodes. This may limit the use of this sensor in applications with specific c-rate ranges.
1:Experimental Design and Method Selection:
The study involved the use of fiber-optic evanescent wave sensors (FOEWS) embedded within graphite electrodes of lithium ion batteries to monitor lithium concentration changes.
2:Sample Selection and Data Sources:
A pouch cell was prepared with an embedded FOEWS, and the battery was cycled from 0 to 100% SOC.
3:List of Experimental Equipment and Materials:
The fabricated battery consisted of graphite and LiFePO4 electrodes, a trilayer poly-propylene-polyethylene-polypropylene membrane as a separator, and a mixture of ethylene carbonate and dimethyl carbonate as an electrolyte.
4:Experimental Procedures and Operational Workflow:
The battery was charged and discharged with specific current and voltage limits, and the optical transmittance through the FOEWS was recorded.
5:Data Analysis Methods:
The slope of the FOEWS signal during charging was analyzed to identify peaks correlating with graphite's stage transitions and capacity fade.
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Ethylene carbonate and dimethyl carbonate mixture
1:1 (vol%) 1 M lithium hexa?uorophosphate
Sigma-Aldrich
Used as an electrolyte in the fabricated battery
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Step index multi-mode optical ?ber
AFS105/125Y
Thorlabs
Used to prepare the sensor
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Bu?ered oxide
JT5569-3
VWR
Used to etch the optical ?ber cladding
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Glycerol
GX0185-2
EMD Millipore
Used to test the fabricated sensors
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Graphite electrodes
MTI Corp.
Part of the fabricated battery
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LiFePO4 electrodes
MTI Corp.
Part of the fabricated battery
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Trilayer poly-propylene-polyethylene-polypropylene membrane
Celgard?
Used as a separator in the fabricated battery
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Graphite slurry
Alfa Aesar
Made using graphite, poly(vinylidene ?uoride), carbon black, and N-methyl-2-pyrrolidone
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Ethylene-vinyl acetate polymer based hot melt adhesive
PLIB-HMA8
MTI Corp.
Used around the fabricated FOEWS to achieve a hermetic seal
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SMA-905 stainless alloy connectors
F193336
FIS
Installed on the ends of the prepared optical ?ber sensor for easier coupling with the optical sensor interrogator
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Programmable battery cycler
BST8-WA
MTI Corp.
Used to cycle the pouch cell
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Narrow band LED
850 nm
Connected to the ?ber-optic sensor
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Photodiode
Connected to the ?ber-optic sensor
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