Engineering thin 3D Li-composite foil negative electrodes with high mechanical toughness

Y Yu-Hao Wang (Hefei National Research Center for Physical Sciences at the Microscale and Department of Chemistry) S Shuang-Jie Tan C Chao-Hui Zhang (CAS Key Laboratory of Molecular Nanostructure and Nanotechnology, Beijing National Laboratory for Molecular Sciences (BNLMS)) J Jun-Chen Guo (Beijing National Laboratory for Molecular Sciences, Key Laboratory of Molecular Nanostructure and Nanotechnology, Institute of Chemistry, Chinese Academy of Sciences) X Xiao-Xi Luo R Ruo-Xi Jin L Lin-Bo Huang X Xiao-Chuan Su C Chen Li (Sibley School of Mechanical and Aerospace Engineering, Cornell University, Ithaca, NY, USA.) X Xu-Sheng Zhang (Chinese Academy of Sciences , , ,) X Xing Zhang (State Key Laboratory of Elemento-Organic Chemistry, Frontiers Science Center for New Organic Matter, College of Chemistry) S Sen Xin (CAS Key Laboratory of Molecular Nanostructure and Nanotechnology, Beijing National Laboratory for Molecular Sciences (BNLMS)) R Rui Wen J Juan Zhang Y Yu-Guo Guo (Chinese Academy of Sciences , , ,)

Abstract

Abstract Current three-dimensional lithium negative electrodes are plagued by inherent trade-offs among mechanical robustness, thin processability, and electrochemical performance. Here, we engineer a free-standing Li-composite foil negative electrodes by integrating a lithiophilic Li-Zn alloy with a Li 3 N-enriched carbon nanotube network. The Li-Zn alloy strengthens tensile resistance and regulates lithium deposition, while the Li 3 N-enriched carbon nanotube network reinforces mechanical toughness, achieving a rupture toughness of 1.3 × 10⁶ J/m³, a 12-fold enhancement over bare lithium. This property enables the fabrication of thin negative electrodes (<10 μm) that resist pulverization during deep Li plating/stripping. In cells with LiNi 0.8 Co 0.1 Mn 0.1 O 2 positive electrodes, the composite negative electrode facilitates extended cyclability (>500 cycles in coin cells at 1 C, 92% retention after 300 cycles in Ah-grade pouch cells at 0.5 C) and sustain high-rate operation (10 C). An 8.5 Ah pouch cell demonstrates a practical specific energy of 553 Wh kg −1 at cell level when tested at 0.1 C. This work presents a design strategy for realizing high-energy, long-cycle-life lithium metal batteries.

Article Details

Volume / Issue Vol. 17, Issue 1
Published February 04, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (15)

Y

Yu-Hao Wang

Hefei National Research Center for Physical Sciences at the Microscale and Department of Chemistry

S

Shuang-Jie Tan

C

Chao-Hui Zhang

CAS Key Laboratory of Molecular Nanostructure and Nanotechnology, Beijing National Laboratory for Molecular Sciences (BNLMS)

J

Jun-Chen Guo

Beijing National Laboratory for Molecular Sciences, Key Laboratory of Molecular Nanostructure and Nanotechnology, Institute of Chemistry, Chinese Academy of Sciences

X

Xiao-Xi Luo

R

Ruo-Xi Jin

L

Lin-Bo Huang

X

Xiao-Chuan Su

C

Chen Li

Sibley School of Mechanical and Aerospace Engineering, Cornell University, Ithaca, NY, USA.

X

Xu-Sheng Zhang

Chinese Academy of Sciences , , ,

X

Xing Zhang

State Key Laboratory of Elemento-Organic Chemistry, Frontiers Science Center for New Organic Matter, College of Chemistry

S

Sen Xin

CAS Key Laboratory of Molecular Nanostructure and Nanotechnology, Beijing National Laboratory for Molecular Sciences (BNLMS)

R

Rui Wen

J

Juan Zhang

Y

Yu-Guo Guo

Chinese Academy of Sciences , , ,