阳极
材料科学
锡
法拉第效率
电极
堆栈(抽象数据类型)
可扩展性
电化学
降级(电信)
钠
扩散
纳米技术
二氧化锡
储能
压舱物
渗透(认知心理学)
电阻式触摸屏
化学工程
双金属片
纳米尺度
氧化锡
相间
作者
Junlin Wu,Wei Tang,Feng Li,Jin An Sam Oh,D Y Lee,Dapeng Xu,Mia Ge,Alan Huang,Sihyun Kim,Yuju Jeon,Duc Tran,Alexander Fuqua,Chang Zhang,Hongpeng Gao,Ying Shirley Meng,Zheng Chen
出处
期刊:Joule
[Elsevier BV]
日期:2026-07-01
卷期号:: 102570-102570
标识
DOI:10.1016/j.joule.2026.102570
摘要
Tin (Sn) anodes in sodium all-solid-state batteries (NaSSBs) suffer severe chemomechanical degradation and interfacial instability during (de)alloying reactions, which disrupt ion-electron percolation pathways, accelerate interphase degradation, and reduce sodium inventory. Here, we show that rational anode interface-interphase design enables highly reversible (de)alloying with mitigated volume expansion. This architecture is mechanically compliant and ion-electron co-percolating, sustaining Na⁺ diffusion and electron transport while mitigating sodium trapping, thereby enabling reversible electrochemical operation of Sn. The engineered Sn anode achieves a high initial Coulombic efficiency (93.6%), long cycle life (500 cycles), and high loading (5 mAh cm⁻ 2 ) in pellet cells. Importantly, this strategy is compatible with roll-to-roll processing, enabling scalable manufacturing of NaSSBs. The resulting pouch-type NaSSB delivers a stack energy density of 301 Wh L⁻ 1 and sustains over 100 cycles at 3 mAh cm⁻ 2 under 5 MPa. These results demonstrate a viable pathway toward scalable manufacturing of high-energy NaSSBs.
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