Integrated Temperature–Humidity Sensors for a Pouch-Type Battery Using 100% Printing Process

Author:

Oh Gyeongseok1,Sim Jae-Ho1,Won Mijin1,Jung Minhun2,Mantry Snigdha Paramita2ORCID,Kim Dong-Soo1

Affiliation:

1. Department of Creative Convergence Engineering, Hanbat National University, Yuseong-ku, Daejeon 305-719, Republic of Korea

2. Research Institute of Printed Electronics & 3D Printing, Hanbat National University, Yuseng-ku, Daejeon 305-719, Republic of Korea

Abstract

The performance, stability, and lifespan of lithium-ion batteries are influenced by variations in the flow of lithium ions with temperature. In electric vehicles, coolants are generally used to maintain the optimal temperature of the battery, leading to an increasing demand for temperature and humidity sensors that can prevent leakage and short circuits. In this study, humidity and temperature sensors were fabricated on a pouch film of a pouch-type battery. IDE electrodes were screen-printed on the pouch film and humidity- and temperature-sensing materials were printed using a dispenser process. Changes in the capacitance of the printed Ag-CNF film were used for humidity sensing, while changes in the resistance of the printed PEDOT:PSS film were used for temperature sensing. The two sensors were integrated into a single electrode for performance evaluation. The integrated sensor exhibited a response of ΔR ≈ 0.14 to temperature variations from 20 °C to 100 °C with 20% RH humidity as a reference, and a response of ΔC ≈ 2.8 to relative humidity changes from 20% RH to 80% RH at 20 °C. The fabricated integrated sensor is expected to contribute to efficient temperature and humidity monitoring applications in various pouch-type lithium-ion batteries.

Funder

Basic Science Research Program through the National 245 Research Foundation of Korea (NRF) funded by the Ministry of Education

Hanbat National University

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry

Reference50 articles.

1. European Parliament (2015, November 11). Available online: www.europarl.europa.eu/RegData/etudes/STUD/2015/569964/IPOL_STU(2015)569964_EN.pdf.

2. European Commission (2021, July 14). Available online: https://ec.europa.eu/commission/presscorner/detail/en/IP_21_3541.

3. Lithium-ion battery lifetime extension: A review of derating methods;Ruan;J. Power Sources,2023

4. Health prognostics for lithium-ion batteries: Mechanisms, methods, and prospects;Che;Energy Environ. Sci.,2023

5. In situ measurement of radial temperature distributions in cylindrical Li-ion cells;Zhang;J. Electrochem. Soc.,2014

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