Direct visualization of complex mechanisms in lithium tellurium batteries

Many studies on lithium-sulfur batteries have been conducted with respect to reaction mechanisms and performance improvements. Despite the high electronic conductivity and volumetric capacity of tellurium, research on lithium-tellurium batteries remains relatively limited. Herein, we shed light on the unique reaction mechanism of lithium-tellurium batteries: a solid-liquid-solid-liquid-solid pathway mediated by the solid Li2Te6 intermediate, as revealed by operando analyses, in contrast to the simpler solid-liquid-solid mechanism of lithium-sulfur and lithium-selenium batteries. Moreover, we demonstrate that Li2Te6 morphology and size are path-dependent: long-chain lithium polytellurides during discharge yield small cubic-like Li2Te6 that dissolve completely, whereas short-chain lithium polytellurides during charge form larger Li2Te6 that do not fully dissolve and enable subsequent tellurium growth. Surprisingly, path-dependency causes residual Li2Te6 to persist in subsequent cycles, thereby degrading battery performance. To address this limitation, we propose tailored charge protocols to control Li2Te6 crystal growth, guided by the reaction mechanisms revealed in this study. Lithium-tellurium batteries promise high-energy storage, but their reaction pathways remain poorly understood. Here, authors directly visualize a solid Li2Te6 intermediate and show that its path-dependent growth and persistence govern electrode morphology, utilization and cycling performance.

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Publication Details

Journal
Nature Communications
Published
2026-08-26
DOI
https://doi.org/10.1038/s41467-026-76636-8
Primary Topic
Advanced Battery Materials and Technologies
Type
article
Field-Weighted Citation Impact
0.00

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article

Direct visualization of complex mechanisms in lithium tellurium batteries

Jun Lim, Mihyun Kim, Jae-Hong Lim, Seung‐Ho Yu et al.
Nature Communications
Advanced Battery Materials and Technologies
article

Direct visualization of complex mechanisms in lithium tellurium batteries

Jun Lim, Mihyun Kim, Jae-Hong Lim, Seung‐Ho Yu, Satchit Nagpal, Minki Kim, Seung‐Yong Lee, Chi Ho Lee, Joseph Sang‐Il Kwon, So Hee Kim, Hyo-Yeol Choi
article en

Abstract

Many studies on lithium-sulfur batteries have been conducted with respect to reaction mechanisms and performance improvements. Despite the high electronic conductivity and volumetric capacity of tellurium, research on lithium-tellurium batteries remains relatively limited. Herein, we shed light on the unique reaction mechanism of lithium-tellurium batteries: a solid-liquid-solid-liquid-solid pathway mediated by the solid Li2Te6 intermediate, as revealed by operando analyses, in contrast to the simpler solid-liquid-solid mechanism of lithium-sulfur and lithium-selenium batteries. Moreover, we demonstrate that Li2Te6 morphology and size are path-dependent: long-chain lithium polytellurides during discharge yield small cubic-like Li2Te6 that dissolve completely, whereas short-chain lithium polytellurides during charge form larger Li2Te6 that do not fully dissolve and enable subsequent tellurium growth. Surprisingly, path-dependency causes residual Li2Te6 to persist in subsequent cycles, thereby degrading battery performance. To address this limitation, we propose tailored charge protocols to control Li2Te6 crystal growth, guided by the reaction mechanisms revealed in this study. Lithium-tellurium batteries promise high-energy storage, but their reaction pathways remain poorly understood. Here, authors directly visualize a solid Li2Te6 intermediate and show that its path-dependent growth and persistence govern electrode morphology, utilization and cycling performance.

Nature Communications
Pohang University of Science and Technology (KR), Korea University (KR), Pohang TechnoPark (South Korea) (KR), Advanced Analysis Center (JP), Korea University (JP), Hanyang University (KR), The Ohio State University (US), Texas A&M University (US), Anyang University (KR)
National Research Foundation, Korea Institute of Science and Technology, National Research Foundation of Korea, Ministry of Science and ICT, South Korea
Affordable and clean energy
Openalex Percentile: Top 19%
Advanced Battery Materials and Technologies
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