法拉第效率
电解质
阳极
相间
分解
阴极
焊剂(冶金)
化学工程
碳纤维
化学
溶剂
工作(物理)
材料科学
表面工程
纳米技术
甲醇
无机化学
电极
化学分解
作者
Peiyao Wang,Shendong Xu,Siya Wang,Xiaoyu Cui,Jin Bai,Yuping Sun,Xuebin Zhu,Bangchuan Zhao,Shulei Chou,Xingqiao Wu
标识
DOI:10.1007/s40820-026-02339-w
摘要
Abstract Hard carbon anodes for sodium-ion batteries suffer from unstable solid-electrolyte interphase formation, leading to low initial Coulombic efficiency and poor cycle stability. Herein, we demonstrate a molecular-level surface design that actively orchestrates an anionic bottom-up flux from the electrolyte bulk to the hard carbon interface. By engineering a synergistic pair of pyridinic-N and carbonyl groups on the carbon surface, we create a functional-differentiation microenvironment where pyridinic-N selectively anchors PF 6 − anions, while the cooperative carbonyl repels solvent molecules. This dual functionality establishes a sustained concentration gradient that drives a continuous reverse flux of anions toward the interface, fundamentally redirecting the electrolyte decomposition pathway from solvent-dominated to anion-preferential. The tailored surface lowers the PF 6 − decomposition barrier by over 70%, yielding a thin, inorganic-rich solid-electrolyte interphase dominated by NaF and Na 2 O. The optimized anode achieves 91.9% Coulombic efficiency with high reversible capacity of 368.2 mAh g −1 , and 96.5% capacity retention after 5,000 cycles. A pouch cell assembled with NFPP cathode achieves an energy density of 239.1 Wh kg −1 and stable operation over 500 cycles, demonstrating strong practical potential. This work establishes active surface-guided anionic transport as a powerful strategy for interphase engineering in advanced sodium-ion batteries.
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