Non-invasive temperature monitoring of operando lithium-ion batteries using polymer capped optical fiber tips

A polymer-capped fiber Fabry–Perot interferometer (PFFPI) is proposed and validated as a compact, and highly sensitive optical sensor for non-invasive temperature monitoring of commercial lithium-ion batteries (LIBs). The interferometer was fabricated by forming a microdome on the cleaved end of a standard single-mode fiber, resulting in a thermally responsive cavity whose interference spectrum was analyzed through phase demodulation. Three sensors were calibrated between 20°C and 60°C, yielding reproducible sensitivities of 0.13 rad/°C. The PFFPIs were externally integrated on a commercial cylindrical INR18650-30Q cell to monitor its temperature changes during galvanostatic charge/discharge at different charge rates (C). Temperature changes below 1.5°C were observed at C/10, increasing to ∼15°C at 1C and ∼30°C at 2C, demonstrating high temporal and spatial resolution of the sensors. During 25 cycles at 2C, the thermal response remained stable without cumulative drift. The relationship of differential analyses revealed a direct correlation between d Δ T / d V with Incremental Capacity Analysis and d Δ T / d Q with Differential Voltage Analysis. Additionally, thermal delays potentially associated with aging were detected. These results demonstrate that PFFPI sensors enable operando thermal-electrochemical coupling analysis, offering a promising approach for real-time diagnostics, safety assurance, and lifetime estimation of LIBs.

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Publication Details

Journal
Journal of Power Sources
Published
2026-10-07
DOI
https://doi.org/10.1016/j.jpowsour.2026.241617
Primary Topic
Advanced Battery Technologies Research
Type
article
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article

Non-invasive temperature monitoring of operando lithium-ion batteries using polymer capped optical fiber tips

Gregorio Guzmán‐González, Rubí Reséndiz-Ramírez, Monserrat Alonso-Murias, Joel Villatoro et al.
Journal of Power Sources
Advanced Battery Technologies Research
article

Non-invasive temperature monitoring of operando lithium-ion batteries using polymer capped optical fiber tips

Gregorio Guzmán‐González, Rubí Reséndiz-Ramírez, Monserrat Alonso-Murias, Joel Villatoro, Erika Rodríguez‐Sevilla, David Monzón-Hernández, Andrés Hernández-Pascual
article en

Abstract

A polymer-capped fiber Fabry–Perot interferometer (PFFPI) is proposed and validated as a compact, and highly sensitive optical sensor for non-invasive temperature monitoring of commercial lithium-ion batteries (LIBs). The interferometer was fabricated by forming a microdome on the cleaved end of a standard single-mode fiber, resulting in a thermally responsive cavity whose interference spectrum was analyzed through phase demodulation. Three sensors were calibrated between 20°C and 60°C, yielding reproducible sensitivities of 0.13 rad/°C. The PFFPIs were externally integrated on a commercial cylindrical INR18650-30Q cell to monitor its temperature changes during galvanostatic charge/discharge at different charge rates (C). Temperature changes below 1.5°C were observed at C/10, increasing to ∼15°C at 1C and ∼30°C at 2C, demonstrating high temporal and spatial resolution of the sensors. During 25 cycles at 2C, the thermal response remained stable without cumulative drift. The relationship of differential analyses revealed a direct correlation between d Δ T / d V with Incremental Capacity Analysis and d Δ T / d Q with Differential Voltage Analysis. Additionally, thermal delays potentially associated with aging were detected. These results demonstrate that PFFPI sensors enable operando thermal-electrochemical coupling analysis, offering a promising approach for real-time diagnostics, safety assurance, and lifetime estimation of LIBs.

Journal of Power SourcesVol. 697
Ikerbasque (ES), Autonomous University of Queretaro (MX), University of the Basque Country (ES), Universidad Autónoma Metropolitana (MX), Centro de Investigaciones en Optica (MX), Universidad Nacional Autónoma de México (MX)
Openalex Percentile: Top 21%
Advanced Battery Technologies Research
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