Advancing Measurement Capabilities in Lithium-Ion Batteries: Exploring the Potential of Fiber Optic Sensors for Thermal Monitoring of Battery Cells
Abstract
1. Introduction
2. Experimental Set-Ups and Thermal-Characterization of Fiber Sensors
3. Temperature Sensitivity of Fiber Sensors
3.1. Spatial Resolution and Measurement Precision
3.2. Thermal Relaxation
3.3. Temperature Dependence
3.4. Temperature Dependence in Bending Radii
4. Impact of Specific Steps During Battery Production on the Functionality of the Sensor
5. Demonstration of a Fiber-Integrated Lithium-Ion Cell
6. Conclusions
Key Findings
- 1.
- Temperature Measurement: Fiber optic sensors showed consistent linear behavior across the tested range (0 to ) with a resolution of and a sampling rate of . These sensors were effective for real-time, spatially resolved temperature monitoring, crucial for preventing thermal runaways and optimizing battery performance and aging behavior.
- 2.
- Fiber Integration: The minimal diameter of the fibers (155–) enabled close placement to or within cells without creating significant stress points, making them highly suitable for integration. Practical tests showed that bending fibers to radii as small as did not compromise measurement accuracy or structural integrity. However, tighter bends or deviations from manufacturer specifications could still affect light propagation and need further evaluation.
- 3.
- Impact of Fixation: The integration of fibers into pouch cells, which required careful consideration of sealing seams, did not compromise internal sensitivity of the fiber optic sensor. However, adhesive fixation points and sealing seams caused localized mechanical stress, impacting measurement results only in the immediate vicinity of the attachments. Beyond these localized areas, measurements remained reliable and unaffected, emphasizing the potential for embedding fibers into battery systems.
- 4.
- Limitations: Mechanical influences, though avoided in this study, can affect fibers during real-world applications. These influences, including internal battery expansion or external mechanical stress, should be explicitly addressed in future research. The study was limited to thermally induced effects and further investigations are needed to understand and mitigate non-thermal factors affecting sensor performance.
- 5.
- Technical Feasibility: A singlemode fiber optic sensor was successfully embedded in the anode of a prototype NMC622/graphite pouch cell. The sensor demonstrated stable operation under standard charge–discharge conditions, reliably capturing temperature variations while also responding to electrochemically induced mechanical effects. These results establish a proof-of-concept for in-situ monitoring in operational lithium-ion cells.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| BMS | battery management system |
| FBG | Fiber Bragg Grating |
| LIB | lithium-ion battery |
| LoA | Limits of Agreement |
| NA | Numerical Aperture |
| OFDR | Optical Frequency Domain Reflectometry |
| OTDR | Optical Time Domain Reflectrometry |
Appendix A. Technical Background on Fiber Optic Sensors
Appendix A.1. Principle of Fiber Optic Sensors

Appendix A.2. Backscattering Effects
Appendix A.3. Optical Time Domain Reflectometry (OTDR)
Appendix A.4. Optical Frequency Domain Reflectometry (OFDR)
Appendix B
| Parameter | Value in |
|---|---|
| Resolution | |
| Instrument accuracy | 1 |
| System (instrument and sensor) accuracy | |
| Measurement uncertainty at zero strain | |
| Measurement uncertainty across full strain range | |
| Measurement uncertainty |
| Parameter | Value in °C |
|---|---|
| Temperature range | to 180 |
| Temperature deviation, temporal | to |
| Temperature deviation, spatial | to 2 |
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| ID | Material | Fiber Thickness in | Temperature Range in °C | Product Specification |
|---|---|---|---|---|
| Fiber A | Polyimide coating | 155 | −40 to +220 | Luna HD6S |
| Fiber B | Polyimide coating | 155 | −40 to +220 | n.a. |
| Fiber C | Dual acrylate coating & Ge-doped core | 245 ± 7 | −55 to +85 | SM1500(9/125) |
| Fiber D | Polyimide coating & Ge-doped core | 155 ± 5 | −55 to +300 | SM1500(9/125)P |
| Fiber E | Dual acrylate coating & pure silica core | 245 ± 15 | −55 to +85 | SM1500SC(9/125) |
| Fiber F | Polyimide coating & pure silica core | 155 ± 5 | −55 to +300 | SM1500SC(9/125)P |
| ID | Coefficient in |
|---|---|
| Fiber A | 9.278 |
| Fiber B | 8.31 |
| Fiber C | 8.46 |
| Fiber D | 8.94 |
| Fiber E | 10.83 |
| Fiber F | 8.64 |
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Krause, F.; Schweizer, F.; Burger, A.; Ludewig, F.; Knips, M.; Quade, K.; Würsig, A.; Sauer, D.U. Advancing Measurement Capabilities in Lithium-Ion Batteries: Exploring the Potential of Fiber Optic Sensors for Thermal Monitoring of Battery Cells. Batteries 2026, 12, 95. https://doi.org/10.3390/batteries12030095
Krause F, Schweizer F, Burger A, Ludewig F, Knips M, Quade K, Würsig A, Sauer DU. Advancing Measurement Capabilities in Lithium-Ion Batteries: Exploring the Potential of Fiber Optic Sensors for Thermal Monitoring of Battery Cells. Batteries. 2026; 12(3):95. https://doi.org/10.3390/batteries12030095
Chicago/Turabian StyleKrause, Florian, Felix Schweizer, Alexandra Burger, Franziska Ludewig, Marcus Knips, Katharina Quade, Andreas Würsig, and Dirk Uwe Sauer. 2026. "Advancing Measurement Capabilities in Lithium-Ion Batteries: Exploring the Potential of Fiber Optic Sensors for Thermal Monitoring of Battery Cells" Batteries 12, no. 3: 95. https://doi.org/10.3390/batteries12030095
APA StyleKrause, F., Schweizer, F., Burger, A., Ludewig, F., Knips, M., Quade, K., Würsig, A., & Sauer, D. U. (2026). Advancing Measurement Capabilities in Lithium-Ion Batteries: Exploring the Potential of Fiber Optic Sensors for Thermal Monitoring of Battery Cells. Batteries, 12(3), 95. https://doi.org/10.3390/batteries12030095

