Thermal Runaway Mechanism in Ni‐Rich Cathode Full Cells of Lithium‐Ion Batteries: The Role of Multidirectional Crosstalk

Author:

Jo Sugeun12,Seo Sungjae1,Kang Song Kyu3,Na Ikcheon1,Kunze Sebastian1,Song Munsoo1,Hwang San14,Woo Sung Pil4,Kim SoHee4,Kim Won Bae35,Lim Jongwoo1ORCID

Affiliation:

1. Department of Chemistry Seoul National University 1 Gwanak‐ro Gwanak‐gu Seoul 08826 Republic of Korea

2. Pohang Accelerator Laboratory Pohang University of Science and Technology (POSTECH) 80 Jigok‐ro 127 beon‐gil, Nam‐gu Pohang‐si Gyeongsangbuk‐do 37637 Republic of Korea

3. Department of Chemical Engineering Pohang University of Science and Technology (POSTECH) 77 Cheongam‐Ro, Nam‐gu Pohang‐si Gyeongsangbuk‐do 37673 Republic of Korea

4. Samsung SDI 150‐20, Gongse‐ro, Giheung‐gu Yongin‐si Gyeonggi‐do 17084 Republic of Korea

5. Graduate Institute of Ferrous & Energy Materials Technology (GIFT) Pohang University of Science and Technology (POSTECH) 77 Cheongam‐Ro, Nam‐gu Pohang‐si Gyeongsangbuk‐do 37673 Republic of Korea

Abstract

AbstractCrosstalk, the exchange of chemical species between battery electrodes, significantly accelerates thermal runaway (TR) of lithium‐ion batteries. To date, the understanding of their main mechanisms has centered on single‐directional crosstalk of oxygen (O2) gas from the cathode to the anode, underestimating the exothermic reactions during TR. However, the role of multidirectional crosstalk in steering additional exothermic reactions is yet to be elucidated due to the difficulties of correlative in situ analyses of full cells. Herein, the way in which such crosstalk triggers self‐amplifying feedback is elucidated that dramatically exacerbates TR within enclosed full cells, by employing synchrotron‐based high‐temperature X‐ray diffraction, mass spectrometry, and calorimetry. These findings reveal that ethylene (C2H4) gas generated at the anode promotes O2 evolution at the cathode. This O2 then returns to the anode, further promoting additional C2H4 formation and creating a self‐amplifying loop, thereby intensifying TR. Furthermore, CO2, traditionally viewed as an extinguishing gas, engages in the crosstalk by interacting with lithium at the anode to form Li2CO3, thereby accelerating TR beyond prior expectations. These insights have led to develop an anode coating that impedes the formation of C2H4 and O2, to effectively mitigate TR.

Funder

Samsung Science and Technology Foundation

Ministry of Science and ICT, South Korea

Publisher

Wiley

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