TY - JOUR
T1 - Stress-dissipative, ambient-compatible prelithiation protocol for dry-processed Si anodes at extremely high areal capacities
AU - Wang, Helin
AU - Hu, Yisheng
AU - Xu, Fei
AU - Liu, Fu
AU - Wang, Jiangan
AU - Wang, Zhaohui
AU - Shao, Ahu
AU - Zhang, Min
AU - Jia, Qiurong
AU - Wang, Zhiqiao
AU - Liu, Jiacheng
AU - Cheng, Lu
AU - Tang, Jiawen
AU - Liu, Ting
AU - Ma, Yue
N1 - Publisher Copyright:
© 2026 Published by Elsevier Ltd.
PY - 2026/8
Y1 - 2026/8
N2 - Roll-to-roll dry processing offers a sustainable pathway for manufacturing high-energy lithium batteries with high-mass-loading electrodes, yet faces severe challenge from reductive degradation of polytetrafluoroethylene (PTFE) binders in anodes that irreversibly deplete Li⁺ source from cathodes/electrolyte reservoirs. Conventional prelithiation protocols prove unsuitable for dry processing, as their slurry-dependent implementations would exacerbate stress heterogeneity within densely-packed electrodes. Herein, this study innovates a stress-dissipative, moisture-tolerant prelithiation strategy for dry-coated anodes. The solvent-free processing fabricates the anode configuration at areal capacities of 5–8 mAh cm⁻², comprising shear-mixed Si@C, ethylene-vinyl acetate (EVA)-encapsulated Li₂₂Si₅ agents, vapor-grown carbon fiber (VGCF), and PVDF-HFP modified PTFE binder. Hydrophobic EVA encapsulation stabilizes Li₂₂Si₅ against moisture (≤50% relative humidity), enabling controlled lithium supplementation under ambient conditions. Paired with dry-coated LiNixMnyCo1−x−yO2 cathodes (NCM, x ≥ 0.9), the 1 Ah pouch cell delivers an energy density of ∼389 Wh kg−1, peak power output of 2256 W kg−1 and 85.7% capacity retention over 900 cycles. Multiscale modeling reveals that the electrode architecture reconciles mechanical integrity, low tortuosity, and stress dissipation via Li⁺ redistribution process; while operando XRD/Micro-CT validate efficient cation replenishment and phase/microstructure reversibility upon cycling. This ambient-compatible prelithiation strategy establishes a universal platform for dry-processed anodes (e.g., SiOx@C, hard carbon), overcoming the industry-wide bottleneck of stringent dry-room dependency for energy/power-dense battery manufacturing.
AB - Roll-to-roll dry processing offers a sustainable pathway for manufacturing high-energy lithium batteries with high-mass-loading electrodes, yet faces severe challenge from reductive degradation of polytetrafluoroethylene (PTFE) binders in anodes that irreversibly deplete Li⁺ source from cathodes/electrolyte reservoirs. Conventional prelithiation protocols prove unsuitable for dry processing, as their slurry-dependent implementations would exacerbate stress heterogeneity within densely-packed electrodes. Herein, this study innovates a stress-dissipative, moisture-tolerant prelithiation strategy for dry-coated anodes. The solvent-free processing fabricates the anode configuration at areal capacities of 5–8 mAh cm⁻², comprising shear-mixed Si@C, ethylene-vinyl acetate (EVA)-encapsulated Li₂₂Si₅ agents, vapor-grown carbon fiber (VGCF), and PVDF-HFP modified PTFE binder. Hydrophobic EVA encapsulation stabilizes Li₂₂Si₅ against moisture (≤50% relative humidity), enabling controlled lithium supplementation under ambient conditions. Paired with dry-coated LiNixMnyCo1−x−yO2 cathodes (NCM, x ≥ 0.9), the 1 Ah pouch cell delivers an energy density of ∼389 Wh kg−1, peak power output of 2256 W kg−1 and 85.7% capacity retention over 900 cycles. Multiscale modeling reveals that the electrode architecture reconciles mechanical integrity, low tortuosity, and stress dissipation via Li⁺ redistribution process; while operando XRD/Micro-CT validate efficient cation replenishment and phase/microstructure reversibility upon cycling. This ambient-compatible prelithiation strategy establishes a universal platform for dry-processed anodes (e.g., SiOx@C, hard carbon), overcoming the industry-wide bottleneck of stringent dry-room dependency for energy/power-dense battery manufacturing.
KW - Areal capacity loadings
KW - Prelithiation strategy
KW - Real-time phase tracking
KW - Solvent-free manufacturing
KW - Stress dissipation
UR - https://www.scopus.com/pages/publications/105040745532
U2 - 10.1016/j.nanoen.2026.112079
DO - 10.1016/j.nanoen.2026.112079
M3 - 文章
AN - SCOPUS:105040745532
SN - 2211-2855
VL - 155
JO - Nano Energy
JF - Nano Energy
M1 - 112079
ER -